Electric circuit
Claim Score by NHIP
Abstract
A transistor has variation in a threshold voltage or mobility due to accumulation of factors such as variation in a gate insulating film which is caused by a difference of a manufacturing process or a substrate to be used and variation in a crystal state of a channel formation region. The present invention provides an electric circuit which is arranged such that both electrodes of a capacitance device can hold a voltage between the gate and the source of a specific transistor. Further, the present invention provides an electric circuit which has a function capable of setting a potential difference between both electrodes of a capacitance device so as to be a threshold voltage of a specific transistor.

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Projected expiry passed 26 November 2022, 3.8 years ago.
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9 claims: 2 independent, 7 dependent
- 1Broadest claimClaim Score 68, broad(NHIP)An electric circuit for outputting an output voltage from an output terminal based on an input voltage to be inputted from an input terminal, characterized by comprising:a transistor;a capacitance device connected between a gate and a source of said transistor;a first switch for making a potential difference between both electrodes of said capacitance device into a power supply voltage;a second switch for making said potential difference into the threshold voltage of said transistor;and a third switch for outputting said output voltage from said source of said transistor when a voltage is inputted in said gate of said transistor.
- 2An electric circuit for outputting an output voltage from an output terminal based on an input voltage to be inputted from an input terminal, characterized by comprising:first and second transistors connected in series;a first capacitance device connected between the gate and the source of said first transistor;a second capacitance device connected between the gate and the source of said second transistor;a first switch for making a potential difference between both electrodes of said first and second capacitance devices into a power supply voltage;a second switch for making a potential difference between said both electrodes of said first capacitance device into the threshold voltage of said first transistor;a third switch for making a potential difference between said both electrodes of said second capacitance device into the threshold voltage of said second transistor;and a fourth switch for outputting said output voltage from said source of said first transistor when a voltage is inputted in said gate of said first transistor and a bias voltage is inputted in said gate of said second transistor.
Independent claims2
251 paragraphs in 5 sections, as filed
TECHNICAL FIELD
[0001] The present invention relates to the art of electric circuits. Specifically, it relates to the art of electric circuits having transistors.
BACKGROUND
[0002] The integrated circuit (IC), for broad use recently on a cellular phone or personal digital assistant, is formed with transistors or resistors as many as several hundreds of thousands to several millions on a silicon substrate in a size of nearly a 5-mm square. This plays an important role in device miniaturization and reliability improvement, and device mass production.
[0003] In designing an electric circuit for use on an integrated circuit (IC) or the like, it is frequent cases to design an amplifier circuit having a function to amplify a voltage or current of a signal small in amplitude. The amplifier circuit is broadly used because of a circuit requisite for eliminating strain occurrence to stably operate an electric circuit.
SUMMARY
[0004] The present invention has been made in view of the above problems. It is a problem to provide an electric circuit suppressing against the affection of transistor characteristic variation. More specifically, it is a problem, in an electric circuit having a function of current amplification, to provide an electric circuit capable of supplying a desired voltage while suppressing against the affection of threshold voltage variation of a transistor.
[0005] Means for Solving the Problems
[0006] In order to solve the above-mentioned problems, the present invention uses an electric circuit with a structure described below.
[0007] The details of one or more embodiments of the invention are set forth in the accompanying drawings and the description below. Other features, objects, and advantages of the invention will be apparent from the description and drawings, and from the claims.
DESCRIPTION OF DRAWINGS
[0008]FIGS. 1A and 1B are diagrams illustrating operations of a source follower circuit of the present invention.
[0009]FIGS. 2A and 2B are diagrams illustrating operations of a source follower circuit of the present invention.
[0010] FIGS. <b>3</b>A-<b>3</b>E are diagrams illustrating a structure and operations of an electric circuit of the present invention.
[0011] FIGS. <b>4</b>A-<b>4</b>C are diagrams illustrating the principle of electric charge preservation.
[0012] FIGS. <b>5</b>A-<b>5</b>C are diagrams illustrating operations of a source follower circuit.
[0013]FIGS. 6A and 6B are diagrams illustrating operations of a source follower circuit.
[0014] FIGS. <b>7</b>A-<b>7</b>C are diagrams illustrating operations of a source follower circuit of the present invention.
[0015]FIG. 8 is a diagram illustrating a structure of a differential amplifier circuit of the present invention.
[0016]FIG. 9 is a diagram illustrating a structure of a differential amplifier circuit of the present invention.
[0017]FIGS. 10A and 10B are diagrams illustrating a structure of an operational amplifier of the present invention.
[0018] FIGS. <b>11</b>A-<b>11</b>C are diagrams showing a semiconductor device of the present invention.
[0019]FIG. 12 is a diagram showing pixels and a circuit for bias of the semiconductor device of the present invention.
[0020]FIGS. 13A and 13B are diagrams illustrating a structure of an electric circuit of the present invention.
[0021]FIG. 14 is a diagram of a signal line drive circuit of the present invention.
[0022]FIG. 15 is a diagram of the signal line drive circuit of the present invention.
[0023]FIG. 16 is a diagram illustrating operations of the signal line drive circuit of the present invention.
[0024]FIG. 17 is a diagram showing an operational amplifier of the present invention.
[0025]FIG. 18 is a diagram showing the operational amplifier of the present invention.
[0026]FIG. 19 is a diagram showing the operational amplifier of the present invention.
[0027] FIGS. <b>20</b>A-<b>20</b>H are illustrations of electric appliances to which the present invention is applied.
[0028]FIGS. 21A and 21B are diagrams illustrating a structure of an operational amplifier of the present invention.
[0029]FIG. 22 is a diagram showing an operational amplifier of the present invention.
[0030]FIG. 23 is a diagram showing an operational amplifier of the present invention.
[0031] Like reference symbols in the various drawings indicate like elements.
DETAILED DESCRIPTION
[0032] Herein, explained is the configuration and operation of a source follower circuit, as one example of amplifier circuit. At first, a configuration example of source follower circuit will be shown in FIG. 5A to explain an operation in a steady state. Next, an operating point of the source follower circuit will be explained, by using FIGS. 5B and 5C. Finally, an example of source follower circuit different in configuration from FIG. 5A will be shown in FIGS. 6A and 6B, to explain an operation in a transient state.
[0033] At first, a steady state operation is explained by using a source follower circuit in FIG. 5A.
[0034] In FIG. 5A, 11 is an n-channel amplifier transistor while <b>12</b> is an n-channel bias transistor. Note that, although the amplifier transistor <b>11</b> and bias transistor <b>12</b> in FIG. 5A is of an n-channel type, configuration may be by the use of p-channel transistors. Herein, the amplifier transistor <b>11</b> and the bias transistor <b>12</b> are assumably the same in characteristic and size, for simplification sake. It is further assumed that the current characteristic of them is ideal. Namely, it is supposed that, even if the amplifier transistor <b>11</b> or bias transistor <b>12</b> is changed in its source-to-drain voltage, there is no change in saturation-region current value.
[0035] Meanwhile, the amplifier transistor <b>11</b> has a drain region connected to a power line <b>13</b> and a source region connected to a drain region of the bias transistor <b>12</b>. The bias transistor <b>12</b> has a source region connected to a power line <b>14</b>.
[0036] The gate electrode of the bias transistor <b>12</b> is applied by a bias potential V<sub>b</sub>. A power-source potential V<sub>dd </sub>is applied onto the power line <b>13</b> while a ground potential V<sub>ss </sub>(=0V) is applied onto the power line <b>14</b>.
[0037] In the source follower circuit of FIG. 5A, the gate electrode of the amplifier transistor <b>11</b> is made as an input terminal so that an input voltage V<sub>in </sub>can be inputted to the gate electrode of the amplifier transistor <b>11</b>. Also, the source region of the amplifier transistor <b>11</b> is made as an output terminal so that the potential on the source region of the amplifier transistor <b>11</b> provides an output potential V<sub>out</sub>. The gate electrode of the bias transistor <b>12</b> is applied by a bias voltage V<sub>b</sub>. When the bias transistor <b>12</b> operates in a saturation region, a current denoted by Ib assumably flows. At this time, because the amplifier transistor <b>11</b> and the bias transistor <b>12</b> are in a series connection, the same amount of current flows through the both transistors. Namely, when a current Ib flows through the bias transistor <b>12</b>, a current Ib flows also through the amplifier transistor <b>11</b>.
[0038] Herein, determined is an output potential V<sub>out </sub>in the source follower circuit. The output potential V<sub>out </sub>is lower in value than the input voltage V<sub>in</sub>, by an amount of the voltage between the gate and the source V<sub>gs1 </sub>of the amplifier transistor <b>11</b>. At this time, the input voltage V<sub>in</sub>, the output potential V<sub>out </sub>and the voltage between the gate and the source V<sub>gs1 </sub>have a relationship satisfying the following Equation (1).
[0039] [Equation 1]
<i>V</i><sub>out</sub><i>=V</i><sub>in</sub><i>−V</i><sub>gs1 </sub> (1)
[0040] In the case the amplifier transistor <b>11</b> is operating in the saturation region, in order to flow a current Ib through the amplifier transistor <b>11</b> there is a necessity that the voltage between the gate and the source V<sub>gs1 </sub>of the amplifier transistor <b>11</b> is equal to a bias potential V<sub>b</sub>. If so, the following Equation (2) is held. However, Equation (2) is held only when the amplifier transistor <b>11</b> and the bias transistor <b>12</b> operate in the saturation region.
[0041] [Equation 2]
<i>V</i><sub>out</sub><i>=V</i><sub>in</sub><i>−V</i><sub>b </sub> (2)
[0042] Next explained is an operating point of the source follower circuit by using FIGS. 5B and 5C showing a relationship of between a voltage and a current of the amplifier transistor <b>11</b> and bias transistor <b>12</b>. More specifically, explanation is made on a case that the voltage between the gate and the source V<sub>gs1 </sub>of the amplifier transistor <b>11</b> is same in value as the voltage between the gate and the source V<sub>gs2 </sub>of the bias transistor <b>12</b>, by using FIG. 5B. Next explained is a case that the voltage between the gate and the source V<sub>gs1 </sub>of the amplifier transistor <b>11</b> is different in value from the voltage between the gate and the source V<sub>gs2 </sub>of the bias transistor <b>12</b> wherein, for example, the bias transistor <b>12</b> is operating in a linear region, by using FIG. 5C.
[0043] In FIG. 5B, the dotted line <b>21</b> shows a relationship between a voltage and a current when the amplifier transistor <b>11</b> has a voltage between the gate and the source V<sub>gs1 </sub>of V<sub>b</sub>. The solid line <b>22</b> shows a relationship between a voltage and a current when the bias transistor <b>12</b> has a voltage between the gate and the source V<sub>gs2 </sub>of V<sub>b</sub>. Meanwhile, in FIG. 5C, the dotted line <b>21</b> shows a relationship between a voltage and a current when the amplifier transistor <b>11</b> has a voltage between the gate and the source V<sub>gs1 </sub>of V<sub>b</sub>′. The solid line <b>22</b> shows a relationship between a voltage and a current when the bias transistor <b>12</b> has a voltage between the gate and the source V<sub>gs2 </sub>of V<sub>b</sub>.
[0044] In FIG. 5B, the voltage between the gate and the source V<sub>gs1 </sub>of the amplifier transistor <b>11</b> and the voltage between the gate and the source V<sub>gs2 </sub>of the bias transistor <b>12</b> are in the same value, and further the bias potential V<sub>b </sub>and the voltage between the gate and the source V<sub>gs2 </sub>of bias transistor <b>12</b> are in the same value. Consequently, the voltage between the gate and the source V<sub>gs1 </sub>of the amplifier transistor <b>11</b> is in the same value as the bias potential V<sub>b</sub>. Namely, this results in V<sub>gs1</sub>=V<sub>gs2</sub>=V<sub>b</sub>. The amplifier transistor <b>11</b> and the bias transistor <b>12</b> are operating in the saturation region, as shown in FIG. 5B. At this time, the input voltage V<sub>in </sub>and the output potential V<sub>out </sub>have a relationship in a linear form.
[0045] On the other hand, in FIG. 5C, the voltage between the gate and the source V<sub>gs1 </sub>of the amplifier transistor <b>11</b> is in a value different from the voltage between the gate and the source V<sub>gs2 </sub>of bias transistor <b>12</b>. Furthermore, the voltage between the gate and the source V<sub>gs2 </sub>of bias transistor <b>12</b> is in a same value as the bias voltage V<sub>b</sub>. Meanwhile, it is assumed that the voltage between the gate and the source V<sub>gs1 </sub>of the amplifier transistor <b>11</b> is at the bias voltage V<sub>b</sub>′. Namely, this results in V<sub>gs2</sub>=V<sub>b </sub>and V<sub>gs1</sub>=V<sub>b</sub>′. As shown n FIG. 5C, the amplifier transistor <b>11</b> is operating in the saturation region while the bias transistor <b>22</b> is operating in the linear region. At this time, the input voltage V<sub>in</sub>, the output potential V<sub>out </sub>and the bias potential V<sub>b</sub>′ have a relationship satisfying the following Equation (3).
[0046] [Equation 3]
<i>V</i><sub>out</sub><i>=V</i><sub>in</sub><i>−V</i><sub>b</sub>′ (3)
[0047] Provided that the current flowing upon operating of the bias transistor <b>12</b> in the linear region is taken Ib′, Ib′<Ib is given. Namely, by having V<sub>b</sub>′<V<sub>b</sub>, the both values of the input voltage V<sub>in </sub>and current Ib′ decrease. Thereupon, the bias potential V<sub>b</sub>′ also decreases. At this time, the input voltage V<sub>in </sub>and the output potential V<sub>out </sub>have a non-linear relationship.
[0048] Summarizing the above, in order to increase the amplitude of the output potential V<sub>out </sub>in the source follower circuit in a steady state, it is preferred to decrease the bias potential V<sub>b</sub>. This is because of the following two reasons.
[0049] The first reason is that the output potential V<sub>out </sub>can be increased at a small bias potential V<sub>b</sub>, as shown in Equation (2). The second reason is that, in the case of a great bias potential V<sub>b </sub>value, the bias transistor <b>12</b> readily operate in the linear region at a decreased input voltage V<sub>in</sub>. In case the bias transistor <b>12</b> operates in the linear region, the input voltage V<sub>in </sub>and the output potential V<sub>out </sub>are ready to have a non-linear relationship.
[0050] Incidentally, because the bias transistor <b>12</b> is required in a conduction state, there is a need to provide a greater value of bias potential V<sub>b </sub>than a threshold voltage of the bias transistor <b>12</b>.
[0051] So far explained was the operation in a steady state of the source follower circuit. Subsequently, explanation is made on the operation of the source follower circuit in a transient state, by using FIGS. 6A and 6B.
[0052] The source follower circuit shown in FIGS. 6A and 6B has a configuration designed by adding a capacitance device <b>15</b> to the circuit of FIG. 5A. The capacitance device <b>15</b> has one terminal connected to the source region of the amplifier transistor <b>11</b> and the other terminal connected to the power line <b>16</b>. A ground potential V<sub>ss </sub>is applied onto the power line <b>16</b>.
[0053] The capacitance device <b>15</b> has a same potential difference at between its both electrodes as the output potential V<sub>out </sub>of the source follower circuit. Herein, explained is the operation in a case of V<sub>out</sub><V<sub>in</sub>−V<sub>b</sub>, by using FIG. 6A. Next explained is the operation in a case of V<sub>out</sub>>V<sub>in</sub>−V<sub>b</sub>, by using FIG. 6B.
[0054] At first, explanation is made on the operation in a transient state of the source follower circuit in the case of V<sub>out</sub><V<sub>in</sub>−V<sub>b</sub>, by using FIG. 6A.
[0055] In FIG. 6A, when t=0, the voltage between the gate and the source V<sub>gs1 </sub>of the amplifier transistor <b>11</b> has a greater value than the voltage between the gate and the source V<sub>gs2 </sub>of the bias transistor <b>12</b>. Consequently, a great current flows through the amplifier transistor <b>11</b> to promptly hold charge on the capacitance device <b>15</b>. Thereupon, the output potential V<sub>out </sub>increases to decrease the voltage between the gate and the source V<sub>gs1 </sub>value of the amplifier transistor <b>11</b>.
[0056] As time elapses (t=t<b>1</b>, t<b>1</b>>0), the amplifier transistor <b>11</b> goes into a steady state when its voltage between the gate and the source V<sub>gs1 </sub>becomes equal to the bias potential V<sub>b</sub>. At this time, the output potential V<sub>out</sub>, the input voltage V<sub>in </sub>and the bias potential V<sub>b </sub>have a relationship satisfying the foregoing Equation (2).
[0057] Summarizing the above, in the case of V<sub>out</sub><V<sub>in</sub>−V<sub>b</sub>, the voltage between the gate and the source V<sub>gs1 </sub>of the amplifier transistor <b>11</b> is greater in value than the bias potential V<sub>b</sub>. Accordingly, a great current flows through the amplifier transistor <b>11</b>, to promptly hold charge on the capacitance device <b>15</b>. Hence, the time may be short that is required for the capacitance device <b>15</b> to hold predetermined charge, in other words the time required in writing a signal to the capacitance device <b>15</b>.
[0058] Next, explanation is made on the operation in a transient state of the source follower circuit in the case of V<sub>out</sub>>V<sub>in</sub>−V<sub>b</sub>, by using FIG. 6B.
[0059] In FIG. 6B, when t=0, the voltage between the gate and the source V<sub>gs1 </sub>of the amplifier transistor <b>11</b> has a smaller value than the threshold voltage of the amplifier transistor <b>11</b>. Consequently, the amplifier transistor <b>11</b> is in a non-conduction state. The charge stored on the capacitance device <b>15</b> flows in a direction toward the ground potential V<sub>ss </sub>through the bias transistor <b>12</b>, finally being discharged. At this time, because the voltage between the gate and the source V<sub>gs2 </sub>of the bias transistor <b>12</b> is in the same value as the bias potential V<sub>b</sub>, the current flowing through the bias transistor <b>12</b> is Ib.
[0060] As time elapses (t=t<b>1</b>, t<b>1</b>>0), the output potential V<sub>out </sub>decreases while the voltage between the gate and the source V<sub>gs1 </sub>of the amplifier transistor <b>11</b> increases. When the voltage between the gate and the source V<sub>gs1 </sub>of the amplifier transistor <b>11</b> becomes equal to the bias potential V<sub>b</sub>, a steady state is entered. At this time, the output potential V<sub>out</sub>, the input voltage V<sub>in </sub>and the bias potential V<sub>b </sub>have a relationship satisfying the foregoing Equation (2). Note that, in the steady state, the output potential V<sub>out </sub>is kept at a constant value, and charge does not flow to the capacitance device <b>15</b>. Thus, a current Ib flows through the amplifier transistor <b>11</b> and bias transistor <b>12</b>.
[0061] Summarizing the above, in the case of V<sub>out</sub>>V<sub>in</sub>−V<sub>b</sub>, the time for the capacitance device <b>15</b> to hold predetermined charge, in other words the write time of a signal to the capacitance device <b>15</b>, relies upon the current Ib flowing through the bias transistor <b>12</b>. The current Ib relies upon a magnitude of the bias potential V<sub>b</sub>. Accordingly, in order to increase the current Ib and shorten the write time of a signal to the capacitance element <b>15</b>, a necessity is raised to increase the bias potential V<sub>b</sub>.
[0062] Incidentally, as a method of correcting for threshold-voltage variation of transistors, there is a method that variation is observed by an output of a circuit a signal has been inputted and thereafter the variation is inputted and fed back thereby carrying out a correction (e.g. see Non-Patent Document 1).
[0063] [Non-Patent Document] H. Sekine et al, “Amplifier Compensation Method for a Poly-Si TFT LCLV with an Integrated Data-Driver”, IDRC′ 97, p. 45-48.
[0064] Problems to be Resolved by the Invention
[0065] The foregoing operation of the source follower circuit is to be carried out on an assumption the amplifier transistor <b>11</b> and the bias transistor <b>12</b> have the same characteristic. However, for the both transistors, variation occurs in the threshold voltage or mobility due to gathering of the factors, such as gate insulating film thickness or variation in channel-region crystal state caused due to the difference in fabrication process or substrate used.
[0066] For example, it is assumed, in FIG. 5A, that there is variation of 1 V provided that the amplifier transistor <b>11</b> has a threshold of 3 V and the bias transistor <b>12</b> has a threshold of 4 V. If so, in order to flow a current Ib, there is a need to apply a voltage for the voltage between the gate and the source V<sub>gs1 </sub>of the amplifier transistor <b>11</b> lower by 1 V than the voltage between the gate and the source V<sub>gs2 </sub>of the bias transistor <b>12</b>. Namely, V<sub>gs1</sub>=V<sub>b</sub>−1 results. If so, V<sub>out</sub>=V<sub>in</sub>−V<sub>gs1</sub>=V<sub>in</sub>−V<sub>b</sub>+1 results. Namely, in case variation occurs even by 1 V in the threshold voltage of the amplifier transistor <b>11</b> and bias transistor <b>12</b>, variation is also caused in the output potential V<sub>out</sub>.
[0067] An electric circuit shown in FIG. 3A includes switching elements <b>31</b> and <b>32</b> (hereinafter referred to as sw <b>31</b> and sw <b>32</b>) having a switching function, an n-channel type transistor <b>33</b>, and a capacitance device <b>34</b>. A source region of the transistor <b>33</b> is connected to a power supply line <b>36</b> and a drain region thereof is connected to a power supply line <b>35</b> via the sw <b>31</b>. A gate electrode of the transistor <b>33</b> is connected to one terminal of the capacitance deivice <b>34</b>. In addition, the other terminal of the capacitance device <b>34</b> is connected to a power supply line <b>37</b>. The capacitance device <b>34</b> carries out a function of holding a voltage between the gate and the source V<sub>gs </sub>of the transistor <b>33</b>. In addition, a power supply voltage V<sub>dd </sub>is applied to the power supply line <b>35</b> and a ground voltage V<sub>ss </sub>is applied to the power supply lines <b>36</b> and <b>37</b>.
[0068] Although the transistor <b>33</b> is assumed to be an n-channel type in FIGS. 3A to <b>3</b>C, the transistor <b>33</b> is not limited to this and it is possible to constitute it by a p-channel type transistor. In addition, an electric circuit having the same circuit element as FIG. 3A and a different connection structure is shown in FIG. 3C. Since operations of the electric circuit shown in FIG. 3C follow operations of the circuit shown in FIG. 3A discussed below, a description of the operations will be omitted here.
[0069] Further, in the electric circuit shown in FIG. 3A, an electric charge is held in the capacitance device <b>34</b> such that a potential difference between both the electrodes of the capacitance device <b>34</b> takes the same value as a threshold voltage of the transistor <b>33</b>. This operation will be hereinafter described.
[0070] In FIG. 3A, the sw <b>31</b> and the sw <b>32</b> are ON. In this state, since the power supply voltage V<sub>dd </sub>is applied to the power line <b>35</b> and the ground voltage V<sub>ss </sub>is applied to the power supply lines <b>36</b> and <b>37</b>, a potential difference is generated between the power supply line <b>35</b> and the power supply lines <b>36</b> and <b>37</b>. As a result, an electric current I<sub>ds </sub>flows from the power supply line <b>35</b> toward directions of the transistor <b>33</b> and the capacitance device <b>34</b> via the sw <b>31</b> and the sw <b>32</b>. At this point, the electric current I<sub>ds </sub>branches to I<sub>1 </sub>and I<sub>2 </sub>and flows. Note that the electric current I<sub>ds </sub>satisfies I<sub>ds</sub>=I<sub>1</sub>+I<sub>2</sub>.
[0071] At an instance when an electric current starts flowing from the power supply line <b>35</b> in the directions of the power supply line <b>36</b> and the power supply line <b>37</b>, an electric charge is not held in the capacitance device <b>34</b>. Thus, the transistor <b>33</b> is OFF. Therefore, I<sub>1</sub>=0 and I<sub>ds</sub>=I<sub>2</sub>.
[0072] Then, an electric charge is gradually stored in the capacitance device <b>34</b>, and a potential difference starts to be generated between both the electrodes of the capacitance device <b>34</b>. When the potential difference between both the electrodes has reached V<sub>th</sub>, the transistor <b>33</b> is turned ON, and I<sub>1</sub>>0. Since Ids=I<sub>1</sub>+I<sub>2 </sub>as described above, I<sub>2 </sub>gradually decreases but an electric current is still flowing.
[0073] Then, in the capacitance device <b>34</b>, the storage of electric charges is continued until the potential difference between both the electrodes of the capacitance device <b>34</b> reaches V<sub>dd</sub>. When the storage of electric charges ends in the capacitance device <b>34</b> (FIGS. 3D and 3E, A point), the electric current I<sub>2 </sub>stops flowing, and since the transistor <b>33</b> is ON, I<sub>ds</sub>=I<sub>1</sub>.
[0074] Subsequently, as shown in FIG. 3B, the sw <b>31</b> is turned OFF. The sw <b>32</b> continues to be ON. Then, the electric charges held in the capacitance device <b>34</b> flow in the direction of the transistor <b>33</b> via the sw <b>32</b>. More specifically, the electric charges held in the capacitance device <b>34</b> flow from the drain region of the transistor <b>33</b> in the direction of the power supply line <b>36</b> via the source region and discharge. This operation is performed until the transistor <b>33</b> is turned OFF. That is, it is continued until the electric charges held in the capacitance device <b>34</b> reaches the same value as the threshold voltage of the transistor <b>33</b> (FIGS. 3D and 3E, B point).
[0075] In this way, electric charges are held such that a potential difference between both the electrodes of the capacitance device <b>34</b> takes the same value as the threshold voltage of the transistor <b>33</b>.
[0076] As described above, the present invention provides an electric circuit which is arranged such that both electrodes of a capacitance device can hold a voltage between the gate and the source of a specific transistor. Further, the present invention provides an electric circuit which has a function capable of setting a potential difference between both electrodes of a capacitance device so as to be a threshold voltage of a specific transistor.
[0077] Moreover, in the present invention, a voltage between the gate and the source of a specific transistor held in a capacitance device is preserved as it is, and a signal voltage (voltage of a video signal, etc.) is inputted to a gate electrode of the transistor. Then, a voltage with the signal voltage added to the voltage between the gate and the source preserved in the capacitance device is inputted to the gate electrode of the transistor. As a result, a value found by adding a threshold voltage of the transistor and the signal voltage is inputted to the gate electrode of the transistor. That is, in the present invention, even if threshold voltages fluctuate among transistors, the value found by adding the threshold value of the transistor and the signal voltage is always inputted to a transistor to which a signal voltage is inputted. Thus, an electric circuit can be provided in which an influence of the variation of threshold values among transistors is suppressed.
[0078] Note that the mechanism in which a signal voltage is added to a voltage between the gate and the source held in a capacitance device can be explained according to the principle of electric charge preservation. The principle of electric charge preservation indicates the fact that a total quantity of electricity of an algebraic sum of a quantity of positive electricity and a quantity of negative electricity is definite. Here, the principle of electric charge preservation will be described using FIGS. 4A to <b>4</b>C.
[0079] In FIGS. 4A to <b>4</b>C, reference numeral <b>26</b> denotes a power supply (constant-voltage source) and <b>27</b> denotes a capacitance device. The power supply <b>26</b> and the capacitance device <b>27</b> are connected via an sw <b>28</b>. The power supply <b>26</b> is connected to a power supply line <b>29</b> and the capacitance device <b>27</b> is connected to a power supply line <b>30</b>.
[0080] In FIG. 4A, the sw <b>28</b> is ON, and 0 V is applied to the power supply line <b>29</b> and the power supply line <b>30</b>. Further, a voltage V<sub>x </sub>is applied to the power supply <b>26</b>, and the sw <b>28</b> is in a conduction state in this state. As a result, electric charges are held in the capacitance device <b>27</b> such that a potential difference between both electrodes of the capacitance device <b>27</b> becomes V<sub>x</sub>.
[0081] Subsequently, in FIG. 4B, the sw <b>28</b> is turned OFF. At this point, the electric charges held in the capacitance device <b>27</b> continue to be held according to the principle of electric charge preservation.
[0082] Then, in FIG. 4C, a voltage V<sub>y </sub>is applied to the power supply line <b>30</b> connected to one terminal of the capacitance device <b>27</b>. The sw <b>28</b> is OFF and 0 V is applied to the power supply line <b>29</b>. At this point, the electric charges held in the capacitance device <b>27</b> are preserved, and a voltage V<sub>y </sub>to be applied to the power supply line <b>30</b> is added to the electric charges. That is, as shown in FIG. 4C, a voltage of one terminal of the capacitance device <b>27</b> becomes (V<sub>y</sub>+V<sub>x</sub>).
[0083] In this way, in the capacitance device <b>27</b>, when the held electric charges continue to be preserved as they are and a voltage of one terminal of the capacitance device <b>27</b> increases, a voltage of the other terminal increases accordingly.
[0084] Note that, in the present invention, a transistor using any material and a transistor undergone any means and manufacturing method may be used, and a transistor of any type may be used. For example, a thin film transistor (TFT) may be used. As the TFT, a TFT with any of an amorphous, polycrystal, and single crystal semiconductor layers may be used. As other transistors, a transistor produced on a single crystal substrate or a transistor produced on an SOI substrate may be used. In addition, a transistor formed of an organic matter or a carbon nanotube may be used. Moreover, an MOS transistor or a bipolar transistor may be used.
[0085] Mode for Carrying Out the Invention
[0086] (Embodiment 1)
[0087] In this embodiment, a source follower circuit will be indicated as an example of the electric circuit of the present invention, and a structure and operations thereof will be described using FIGS. 1 and 2.
[0088] In FIGS. 1 and 2, reference numeral <b>211</b> denotes an n-channel type transistor for amplification and <b>212</b> denotes an n-channel type transistor for bias. Reference numerals <b>213</b> and <b>214</b> denote capacitance devices. In addition, reference numerals <b>215</b> to <b>222</b> denote elements having a switching function, and preferably, a semiconductor element such as a transistor or an analog switch is used. Reference numerals <b>223</b> and <b>224</b> denote power supply lines, and a power supply voltage V<sub>dd </sub>is applied to the power supply line <b>223</b> and a ground voltage V<sub>ss </sub>is applied to the power supply line <b>224</b>.
[0089] Note that, in this embodiment, although a case in which the transistor for amplification <b>211</b> and the transistor for bias <b>212</b> are the n-channel type is shown, the present invention is not limited to this and both the transistors may be the p-channel type. In addition, polarities of both the transistors may be different.
[0090] In the case in which polarities of both the transistors are different, since a push-pull circuit is constituted, both the transistors function as the transistor for amplification. Thus, signals are inputted to both the transistors.
[0091] A drain region of the transistor for amplification <b>211</b> is connected to the power supply line <b>223</b> and a source region thereof is connected to the switches <b>217</b> to <b>219</b>. A gate electrode of the transistor for amplification <b>211</b> is connected to one terminal of the capacitance device <b>213</b>. The other terminal of the capacitance device <b>213</b> is connected to the source region of the transistor <b>211</b> via the switch <b>217</b>. The capacitance device <b>213</b> carries out a function of holding a voltage between the gate and the source (threshold voltage) of the transistor for amplification <b>211</b>. Note that the transistor for amplification <b>211</b> will hereinafter represented as the transistor <b>211</b>.
[0092] A source region of the transistor for bias <b>212</b> is connected to the power supply line <b>224</b> and a drain region thereof is connected to the switches <b>219</b> and <b>220</b>. A gate electrode of the transistor for bias <b>212</b> is connected to one terminal of the capacitance device <b>214</b>. The other terminal of the capacitance device <b>214</b> is connected to the source region of the transistor for bias <b>212</b> via the switch <b>222</b>. The capacitance device <b>214</b> carries out a function of holding a voltage between the gate and the source (threshold voltage) of the transistor for bias <b>212</b>. Note that the transistor for bias <b>212</b> will be hereinafter represented as the transistor <b>212</b>.
[0093] Conduction or non-conduction (ON or OFF) of the switches <b>215</b> to <b>222</b> is controlled according to a signal to be inputted. However, in FIGS. 1 and 2, illustration of a signal line or the like for inputting a signal to the switches <b>215</b> to <b>222</b> is omitted in order to simplify explanation.
[0094] In the source follower circuit shown in FIGS. 1 and 2, one terminal of the switch <b>216</b> becomes an input terminal. Via the input terminal, an input voltage V<sub>in </sub>(signal voltage) is inputted to the gate electrode of the transistor <b>211</b> via the switch <b>216</b> and the capacitance device <b>213</b>. In addition, a bias voltage V<sub>b </sub>is inputted from one terminal of the switch <b>221</b>. The bias voltage V<sub>b </sub>is inputted to a gate electrode of the transistor <b>212</b> via the switch <b>221</b> and the capacitance device <b>214</b>. In addition, one terminal of the switch <b>218</b> is an output terminal, and a voltage of the source region of the transistor <b>211</b> becomes an output voltage V<sub>out</sub>.
[0095] Note that, although the switch <b>218</b> is connected to the source region of the transistor <b>211</b> and connected to the drain region of the transistor <b>212</b> via the switch <b>219</b>, the present invention is not limited to this. The switch <b>218</b> may be connected to the drain region of the transistor <b>212</b> and connected to the source region of the transistor <b>211</b> via the switch <b>219</b>.
[0096] However, the switch <b>218</b> is preferably connected to the source region of the transistor <b>211</b> and connected to the drain region of the transistor <b>212</b> via the switch <b>219</b>. This is because, in the case in which the switch <b>218</b> is connected to the drain region of the transistor <b>212</b> and connected to the source region of the transistor <b>211</b> via the switch <b>219</b>, if there is an ON resistance in the switch <b>219</b>, the output voltage V<sub>out </sub>is affected by it and decreases.
[0097] Next, operations of the source follower circuit shown in FIGS. 1 and 2 will be described.
[0098] In FIG. 1A, the switch <b>215</b>, the switch <b>217</b>, the switch <b>219</b>, the switch <b>220</b>, and the switch <b>222</b> are turned ON. Further, the other switches are turned OFF. In this state, since V<sub>dd </sub>is applied to the power supply line <b>223</b> and V<sub>ss </sub>is applied to the power supply line <b>224</b>, a potential difference is generated between the power supply line <b>223</b> and the power supply line <b>224</b>. As a result, an electric current flows toward the direction of the power supply line <b>224</b> from the power supply line <b>223</b>.
[0099] At an instance when an electric current starts flowing in the direction of the power supply line <b>224</b> from the power supply line <b>223</b>, electric charges are not held in the capacitance device <b>213</b> and the capacitance device <b>214</b>. Therefore, the transistor <b>211</b> and the transistor <b>212</b> are OFF. The electric current flows in the direction of the power supply line <b>224</b> from the power supply line <b>223</b> via the switch <b>215</b> and the switch <b>217</b>, subsequently via the switch <b>219</b>, and further via the switch <b>220</b> and the switch <b>222</b>.
[0100] Then, electric charges are gradually stored in the capacitance devices <b>213</b> and <b>214</b>, and a potential difference starts to be generated between both the electrodes of the capacitance devices <b>213</b> and <b>214</b>. When the potential difference between both the electrodes of the capacitance device <b>213</b> reaches a threshold voltage V<sub>th1 </sub>of the transistor <b>211</b>, the transistor <b>211</b> is turned ON. Similarly, when the potential difference between both the electrodes of the capacitance device <b>214</b> reaches a threshold voltage V<sub>th2 </sub>of the transistor <b>212</b>, the transistor <b>212</b> is turned ON.
[0101] In the capacitance devices <b>213</b> and <b>214</b>, storage of electric charges is continued until the elements come into a stationary state.
[0102] Subsequently, as shown in FIG. 1B, when the storage of electric charges ends in the capacitance devices <b>213</b> and <b>214</b> and the elements comes into the stationary state, the switch <b>219</b> is turned OFF from ON, and the other switches maintain the state of FIG. 1A.
[0103] Then, positive electric charges held in the capacitance device <b>213</b> flow in the direction of the transistor <b>211</b> via the switch <b>215</b>. More specifically, the positive electric charges held in the capacitance device <b>213</b> flow from the drain region of the transistor <b>211</b> via the switch <b>215</b> in the direction of the capacitance device <b>213</b> via the source region thereof and further via the switch <b>217</b>. As a result, the potential difference between both the electrodes of the capacitance device <b>213</b> decreases. This operation is performed until the transistor <b>211</b> is turned OFF. That is, it is continued until the electric charges held in the capacitance device <b>213</b> become the same value as the threshold voltage V<sub>th1 </sub>of the transistor <b>211</b>.
[0104] In addition, positive electric charges held in the capacitance device <b>214</b> flow in the direction of the transistor <b>212</b> via the switch <b>220</b>. More specifically, the positive electric charges held in the capacitance device <b>214</b> flow from the drain region of the transistor <b>212</b> via the switch <b>220</b> in the direction of the power supply line <b>224</b> via its source region. This operation is performed until the transistor <b>212</b> is turned OFF. That is, it is continued until the electric charges held in the capacitance device <b>214</b> become the same value as the threshold voltage V<sub>th2 </sub>of the transistor <b>212</b>.
[0105] In this way, the potential difference between both the electrodes of the capacitance device <b>213</b> takes the same value as the threshold voltage V<sub>th1 </sub>of the transistor <b>211</b>. In addition, the potential difference between both the electrodes of the capacitance device <b>214</b> takes the same value as the threshold voltage V<sub>th2 </sub>of the transistor <b>212</b>.
[0106] When the potential difference between both the electrodes of the capacitance device <b>213</b> takes the same value as the threshold voltage V<sub>th1 </sub>of the transistor <b>211</b> and the potential difference between both the electrodes of the capacitance device <b>214</b> takes the same value as the threshold voltage V<sub>th2 </sub>of the transistor <b>212</b> as described above, the switch <b>215</b>, the switch <b>217</b>, the switch <b>220</b>, and the switch <b>222</b> are turned OFF (FIG. 2A). That is, at this point, all the switches <b>215</b> to <b>222</b> are OFF.
[0107] Note that it is desirable to turn off the switch <b>215</b>, the switch <b>217</b>, the switch <b>220</b>, and the switch <b>222</b> after the potential difference of both the electrodes of the capacitance devices <b>213</b> and <b>214</b> take the same values as the threshold voltages V<sub>th1 </sub>and V<sub>th2 </sub>of the transistors <b>211</b> and <b>212</b>. However, the present invention is not limited to this. In the case in which variation of the transistors <b>211</b> and <b>212</b> is small, since operations of the electric circuit does not specifically cause a problem, the switch <b>215</b>, the switch <b>217</b>, the switch <b>220</b>, and the switch <b>222</b> may be turned OFF when the potential differences between both the electrodes of the capacitance devices <b>213</b> and <b>214</b> take values close to the threshold voltages V<sub>th1 </sub>and V<sub>th2 </sub>of the transistors <b>211</b> and <b>212</b>, and timing therefore is not specifically limited.
[0108] Subsequently, the switch <b>216</b>, the switch <b>218</b>, the switch <b>219</b>, and the switch <b>221</b> are turned ON (FIG. 2B). The other switches keep to be OFF. At this point, an input voltage V<sub>in </sub>is applied to the gate electrode of the transistor <b>211</b> from the input terminal via the switch <b>216</b> and the capacitance device <b>213</b>. At this point, according to the principle of electric charge preservation, a value found by adding the input voltage V<sub>in </sub>to the threshold voltage V<sub>th1 </sub>of the transistor <b>211</b> (V<sub>th1</sub>+V<sub>in</sub>) is applied to the gate electrode of the transistor <b>211</b>. In addition, a value found by adding the input voltage V<sub>b </sub>to the threshold voltage V<sub>th2 </sub>of the transistor <b>212</b> (V<sub>th2</sub>+V<sub>b</sub>) is applied to the gate electrode of the transistor <b>212</b>.
[0109] Note that, when a transistor operates in a saturation region, expression (4) shown below is established. I<sub>ds </sub>is an amount of electric current flowing in a channel formation region of the transistor and V<sub>gs </sub>is a voltage between the gate and the source of the transistor. In addition, V<sub>th </sub>is a threshold voltage of the transistor.
[0110] [Numeral 4]
<i>I</i><sub>ds</sub>∝(<i>V</i><sub>gs</sub><i>−V</i><sub>th</sub>)<sup>2 </sup> (4)
[0111] In the above expression (4), when it is assumed V<sub>k</sub>=V<sub>gs</sub>−V<sub>th</sub>, expression (5) shown below is established.
[0112] [Numeral 5]
<i>I</i><sub>ds</sub><i>∝V</i><sub>k</sub><sup>2 </sup> (5)
[0113] From expression (5), it is seen that I<sub>ds </sub>is proportional to a square of V<sub>k </sub>which is a value found by deducting a value of V<sub>th </sub>from V<sub>gs</sub>.
[0114] Here, the above expressions (4) (5) are applied to the transistors <b>211</b> and <b>212</b> to find an output voltage V<sub>out</sub>. Note that, in this embodiment, it is assumed that gate widths (W) and gate lengths (L) of the transistors <b>211</b> and <b>212</b> do not fluctuate but are identical. On the other hand, it is assumed that the threshold voltages V<sub>th1</sub>, V<sub>th2 </sub>of the transistors <b>211</b> and <b>212</b> fluctuate.
[0115] When a voltage applied to the gate electrode of the transistor <b>212</b> is assumed to be V<sub>a2</sub>, V<sub>a2</sub>=V<sub>b</sub>+V<sub>th2 </sub>is established. Moreover, when a value found by deducting the threshold voltage V<sub>th2 </sub>from the voltage V<sub>a2 </sub>applied to the gate electrode of the transistor <b>212</b> is assumed to be V<sub>k2</sub>, expression (6) shown below is established.
[0116] [Numeral 6]
<i>V</i><sub>k2</sub><i>=V</i><sub>a2</sub><i>−V</i><sub>th2</sub>=(<i>V</i><sub>b</sub><i>+V</i><sub>th2</sub>)−<i>V</i><sub>th2</sub><i>=V</i><sub>b </sub> (6)
[0117] Then, when a voltage applied to the gate electrode of the transistor <b>211</b> is assumed to be V<sub>a1</sub>, expression (7) shown below is established.
[0118] [Numeral 7]
<i>V</i><sub>a1</sub><i>=V</i><sub>in</sub><i>+V</i><sub>th1 </sub> (7)
[0119] Moreover, when a value found by deducting the threshold voltage V<sub>th1 </sub>from the voltage between the gate and the source V<sub>gs1 </sub>of the transistor <b>211</b> is assumed to be V<sub>k1</sub>, expression (8) shown below is established.
[0120] [Numeral 8]
<i>V</i><sub>k1</sub><i>=V</i><sub>gs1</sub><i>−V</i><sub>th1 </sub> (8)
[0121] Here, since the same amount of electric current flows to the transistors <b>211</b> and <b>212</b>, expression (9) shown below is established.
[0122] [Numeral 9]
<i>V</i><sub>k1</sub><i>=V</i><sub>k2</sub><i>=V</i><sub>b </sub> (9)
[0123] Further, since the output voltage V<sub>out </sub>is a voltage of the source region of the transistor <b>211</b>, expression (10) shown below is established.
[0124] [Numeral 10]
<i>V</i><sub>out</sub><i>=V</i><sub>a1</sub><i>−V</i><sub>gs1</sub>=(<i>V</i><sub>in</sub><i>+V</i><sub>th1</sub>)−(<i>V</i><sub>b</sub><i>+V</i><sub>th1</sub>)=<i>V</i><sub>in</sub><i>−V</i><sub>b </sub> (10)
[0125] As indicated in expression (10), the output voltage V<sub>out </sub>takes a value found by deducting the bias voltage V<sub>b </sub>from the input voltage V<sub>in </sub>and does not depend upon the threshold voltage. Thus, even if the threshold voltages of the transistor <b>211</b> and <b>212</b> fluctuate, an influence exerted on the output voltage V<sub>out </sub>can be suppressed.
[0126] Note that, although it is assumed in this embodiment that the gate widths (W) and the gate lengths (L) of the transistors <b>211</b> and <b>212</b> do not fluctuate but are identical, sizes of the gate widths (W) and the gate lengths (L) of both the transistors are not specifically limited.
[0127] In addition, in FIG. 7C, a source follower circuit in the case in which the transistor for bias <b>212</b> is not arranged is shown. Since operations of the source follower circuit shown in FIG. 7C are the same as the operations in FIGS. 1 and 2 described above except that the switch <b>219</b> is turned OFF at the time of the output operation, a description of the operations will be omitted in this embodiment.
[0128] Note that, in this specification, an operation for holding predetermined electric charges in a capacitance device is referred to as a setting operation. In this embodiment, the operations of FIGS. 1A and 1B and FIG. 2A correspond to the setting operation. In addition, an operation for inputting the input voltage V<sub>in </sub>and the bias voltage V<sub>b </sub>and taking out the output voltage V<sub>out </sub>is referred to as an output operation. In this embodiment, the operation of FIG. 2B corresponds to the output operation.
[0129] As described above, in the present invention, even if threshold voltages fluctuate among transistors, in a transistor to which a signal voltage such as the input voltage V<sub>in </sub>or the bias voltage V<sub>b </sub>is inputted, a value found by adding a threshold value of the transistor and the signal voltage is always inputted. Thus, an electric circuit in which an influence of variation of threshold voltages among transistors is suppressed can be provided.
[0130] (Embodiment 2)
[0131] In the source follower circuit shown in FIGS. 1 and 2, the case in which it includes the n-channel type transistor for amplification <b>211</b> and the n-channel type transistor for bias <b>212</b> is shown. Next, in this embodiment, a source follower circuit including a p-channel type transistor for amplification <b>211</b> and a p-channel type transistor for bias <b>212</b> is shown in FIGS. 7A to <b>7</b>C, and its structure will be described. Note that, since operations of the source follower circuit shown in FIGS. 7A to <b>7</b>C follow the operations of the embodiment 1, a description of the operations will be omitted here.
[0132] In FIGS. 7A to <b>7</b>C, reference numeral <b>231</b> denotes a p-channel type transistor for bias and <b>232</b> denotes a p-channel type transistor for amplification. Reference numerals <b>233</b> and <b>234</b> denote capacitance devices. In addition, reference numerals <b>235</b> to <b>242</b> denote elements having a switching function, and preferably, a semiconductor element such as a transistor or an analog switch is used. Reference numerals <b>243</b> and <b>244</b> denote power supply lines, and a power supply voltage V<sub>dd </sub>is applied to the power supply line <b>243</b> and a ground voltage V<sub>ss </sub>is applied to the power supply line <b>244</b>.
[0133] Note that, although the case in which the transistor for amplification <b>232</b> and the transistor for bias <b>231</b> are the p-channel type is indicated in this embodiment, polarities of both the transistors may be different as in a push-pull circuit.
[0134] A source region of the transistor for bias <b>231</b> is connected to the power supply line <b>243</b> and a drain region thereof is connected to the switches <b>235</b> and <b>239</b>. A gate electrode of the transistor for bias <b>231</b> is connected to one terminal of the capacitance device <b>233</b>. The other terminal of the capacitance device <b>233</b> is connected to the power supply line <b>243</b> via the switch <b>237</b>. The capacitance device <b>233</b> carries out a function of holding a voltage between the gate and the source (threshold voltage) of the transistor for bias <b>231</b>.
[0135] A drain region of the transistor for amplification <b>232</b> is connected to the power supply line <b>244</b> and a source region thereof is connected to the switches, <b>238</b>, <b>239</b>, and <b>242</b>. A gate electrode of the transistor for amplification <b>232</b> is connected to one terminal of the capacitance device <b>234</b>. The other terminal of the capacitance device <b>234</b> is connected to the source region of the transistor for amplification <b>232</b> via the switch <b>242</b>. The capacitance device <b>234</b> carries out a function of holding a voltage between the gate and the source (threshold voltage) of the transistor for amplification <b>232</b>.
[0136] Conduction or non-conduction (ON or OFF) of the switches <b>235</b> to <b>242</b> is controlled according to a signal to be inputted. However, in FIGS. 7A to <b>7</b>C, illustration of a signal line or the like for inputting a signal to the switches <b>235</b> to <b>242</b> will be omitted in order to simplify explanation.
[0137] Note that, although the switch <b>238</b> is connected to the source region of the transistor for amplification <b>232</b> and connected to the drain region of the transistor for bias <b>231</b> via the switch <b>239</b>, the present invention is not limited to this. The switch <b>238</b> may be connected to the drain region of the transistor for bias <b>231</b> and connected to the source region of the transistor for amplification <b>232</b> via the switch <b>239</b>.
[0138] However, the switch <b>238</b> is preferably connected to the source region of the transistor for amplification <b>232</b> and connected to the drain region of the transistor for bias <b>231</b> via the switch <b>239</b>. This is because, in the case in which the switch <b>238</b> is connected to the drain region of the transistor for bias <b>231</b> and connected to the source region of the transistor for amplification <b>232</b> via the switch <b>239</b>, if there is an ON resistance in the switch <b>239</b>, the output voltage V<sub>out </sub>is affected thereby and decreases.
[0139] In the source follower circuit shown in FIGS. 7A to <b>7</b>C, one terminal of the switch <b>241</b> becomes an input terminal. An input voltage V<sub>in </sub>(signal voltage) inputted form the input terminal is inputted to the gate electrode of the transistor for amplification <b>232</b> via the switch <b>241</b> and the capacitance device <b>234</b>. In addition, a bias voltage V<sub>b </sub>is inputted from one terminal of the switch <b>236</b>. The bias voltage V<sub>b </sub>is inputted to the gate electrode of the transistor <b>231</b> via the switch <b>236</b> and the capacitance device <b>233</b>. Further, one terminal of the switch <b>238</b> is an output terminal, and a voltage of the source region of the transistor for amplification <b>232</b> becomes the output voltage V<sub>out</sub>.
[0140] Note that sizes of the gate widths (W) and the gate lengths (L) of the transistor for bias <b>231</b> and the transistor for amplification <b>232</b> are not specifically limited.
[0141] In addition, in FIG. 7B, a source follower circuit in the case in which the transistor for bias <b>231</b> is not arranged is shown. Since operations of the source follower circuit shown in FIG. 7B follow the operations of FIGS. 1 and 2 described above except that the switch is turned OFF at the time of the output operation, a description of the operations will be omitted in this embodiment.
[0142] It is possible to arbitrarily combine this embodiment with the embodiment 1.
[0143] (Embodiment 3)
[0144] In the above-mentions embodiments 1 and 2, the source follower circuit to which the present invention is applied is described. However, the present invention can be applied to various circuits such as an arithmetic and logic unit represented by a differential amplifier circuit, a sense amplifier, an operational amplifier, and the like. In this embodiment, an arithmetic and logic unit to which the present invention is applied will be described using FIGS. <b>8</b> to <b>10</b>.
[0145] First, a differential amplifier circuit to which the present invention is applied will be described using FIG. 8. In the differential amplifier circuit, arithmetic operation of a difference between an input voltage V<sub>in1 </sub>and an input voltage V<sub>in2 </sub>is performed to output an output voltage V<sub>out</sub>.
[0146] In the differential amplifier shown in FIG. 8, reference numerals <b>272</b> and <b>273</b> denote p-channel type transistors and <b>274</b>, <b>275</b>, and <b>286</b> denote n-channel type transistors. Reference numerals <b>276</b>, <b>277</b>, and <b>287</b> denote capacitance devices. In addition, switches <b>278</b> to <b>285</b>, a switch <b>351</b>, switches <b>288</b> to <b>290</b> are elements having a switching function, and preferably, a semiconductor element such as a transistor is used. Further, a power supply voltage V<sub>dd </sub>is applied to a power supply line <b>271</b> and a ground voltage V<sub>ss </sub>is applied to a power supply line <b>291</b>.
[0147] In the differential amplifier circuit shown in FIG. 8, a gate electrode of the transistor <b>274</b> is an input terminal, and the input voltage V<sub>in1 </sub>is inputted to the gate electrode of the transistor <b>274</b>. In addition, a gate electrode of the transistor <b>275</b> is also an input terminal, and the input voltage V<sub>in2 </sub>is inputted to the gate electrode of the transistor <b>275</b>. Further, a drain region of the transistor <b>275</b> is an output terminal, and a voltage of the drain region of the transistor <b>275</b> becomes the output voltage V<sub>out</sub>.
[0148] A drain region of the transistor <b>272</b> is connected to the power supply line <b>271</b> and a source region thereof is connected to a drain region of the transistor <b>274</b>. A drain region of the transistor <b>273</b> is connected to the power supply line <b>271</b> and a source region thereof is connected to the drain region of the transistor <b>275</b>. A gate electrode of the transistor <b>272</b> and a gate electrode of the transistor <b>273</b> are connected. Note that resistors may be arranged instead of the transistors <b>272</b> and <b>273</b>.
[0149] The drain region of the transistor <b>274</b> is connected to the power supply line <b>271</b> via the transistor <b>272</b> and a source region thereof is connected to one terminal of the capacitance device <b>276</b> via the switch <b>282</b>. The gate electrode of the transistor <b>274</b> is connected to the other terminal of the capacitance device <b>276</b>. The capacitance device <b>276</b> carries out a function of holding a voltage between the gate and the source (threshold voltage) of the transistor <b>274</b>.
[0150] The drain region of the transistor <b>275</b> is connected to the power supply line <b>271</b> via the transistor <b>273</b> and a source region thereof is connected to one terminal of the capacitance device <b>277</b> via the switch <b>283</b>. The gate electrode of the transistor <b>275</b> is connected to the other terminal of the capacitance device <b>277</b>. The capacitance device <b>277</b> carries out a function of holding a voltage between the gate and the source (threshold voltage) of the transistor <b>275</b>.
[0151] A drain region of the transistor <b>286</b> is connected to the source region of the transistor <b>274</b> and the source region of the transistor <b>275</b> via the switch <b>285</b> and the switch <b>351</b>, and a source region of the transistor <b>286</b> is connected to one terminal of the capacitance device <b>287</b> via the switch <b>290</b>. A gate electrode of the transistor <b>286</b> is connected to the other terminal of the capacitance device <b>287</b>. The capacitance device <b>287</b> carries out a function of holding a voltage between the gate and the source (threshold voltage) of the transistor <b>286</b>.
[0152] Further, since descriptions of an operation for holding predetermined electric charges in the capacitance device <b>276</b>, an operation for holding predetermined electric charges in the capacitance device <b>277</b>, and an operation for holding predetermined electric charges in the capacitance device <b>287</b> follow the embodiment 1, the operations will be described briefly.
[0153] First, as shown in FIG. 18, initialization is performed. In order to perform the initialization, it is sufficient to bring the transistors <b>274</b>, <b>275</b>, and <b>286</b> into a state in which the transistors are turned ON. Then, as shown in FIG. 19, the transistors <b>274</b>, <b>275</b>, and <b>286</b> are operated such that voltage between the gate and the sources of the transistors converge on a threshold voltage.
[0154] Then, when holding of the predetermined electric charges in the capacitance device <b>276</b> ends, as shown in FIG. 22, an input voltage V<sub>in1 </sub>is inputted to the gate electrode of the transistor <b>274</b>, and when holding of the predetermined electric charges in the capacitance device <b>277</b> ends, an input voltage V<sub>in2 </sub>is inputted to the gate electrode of the transistor <b>275</b>. In addition, when holding of the predetermined electric charges in the capacitance device <b>287</b> ends, a bias voltage V<sub>b </sub>is inputted to the gate electrode of the transistor <b>286</b>, and an output operation is performed. Since a description of the operation at this point follow the embodiment 1, the description will be omitted in this embodiment.
[0155] Note that the circuit of FIG. 8 may be improved to be a circuit shown in FIG. 17. In FIG. 17, switches <b>352</b> and <b>353</b> are additionally arranged in parallel with the transistors <b>272</b> and <b>273</b>. The switches <b>352</b> and <b>353</b> are turned ON when the setting operation is performed (at the time when a threshold voltage is being obtained) and are turned OFF at the time when the output operation is performed (at the time when the circuit is operated as an ordinary differential circuit). By the addition of the switches, an electric current can be easily supplied to the transistors <b>274</b> and <b>275</b> at the time when the setting operation is performed, or voltages of the drains of the transistors <b>274</b> and <b>275</b> can be easily fixed.
[0156] In addition, in the circuits of FIGS. 8 and 17, positions of the switches <b>285</b> and <b>351</b> are different. However, since it is sufficient to bring the transistors <b>274</b>, <b>275</b>, and <b>286</b> into a state in which the transistors are not electrically connected at the time of an operation for obtaining a threshold voltage, if this condition is satisfied, the switches <b>285</b> and <b>351</b> may be arranged anywhere.
[0157] Subsequently, the case in which the transistors constituting the differential amplifier circuit shown in FIG. 8 has an opposite conduction type will be described using FIGS. 9 and 23.
[0158] In differential amplifier circuits shown in FIGS. 9 and 23, reference numeral <b>272</b> and <b>273</b> denotes n-channel type transistors and <b>274</b>, <b>275</b>, and <b>286</b> are p-channel type transistors. The gate electrode of the transistor <b>274</b> is an input terminal, and the input voltage V<sub>in1 </sub>is inputted to the gate electrode of the transistor <b>274</b>. In addition, the gate electrode of the transistor <b>275</b> is also an input terminal, and the input voltage V<sub>in2 </sub>is inputted to the gate electrode of the transistor <b>275</b>. Further, a voltage of the source region of the transistor <b>275</b> becomes the output voltage V<sub>out</sub>. Moreover, the bias voltage V<sub>b </sub>is inputted to the gate electrode of the transistor <b>286</b>.
[0159] Note that, in the differential amplifier circuits shown in FIGS. 9 and 23, structures and operations are the same as those of the differential amplifier circuits shown in FIGS. 8 and 17 except that the power supply voltage V<sub>dd </sub>is applied to the power supply line <b>291</b> and the ground voltage V<sub>ss </sub>is applied to the power supply line <b>271</b>, a description thereof will be omitted here.
[0160] In addition, although the electric circuits shown in FIGS. 8 and 9 are shown as differential amplifier circuits in this embodiment, the present invention is not limited to this, and the electric circuits can be also used as other arithmetic and logic units such as a sense amplifier by appropriately changing voltages inputted as the input voltage V<sub>in1 </sub>and the input voltage V<sub>in2</sub>.
[0161] Next, an operational amplifier to which the present invention is applied will be described using FIGS. 10A and 10B. FIG. 10A shows circuit symbols of the operational amplifier and FIG. 10B shows a circuit structure of the operational amplifier.
[0162] Note that there are various structures as the circuit structure of the operational amplifier. Therefore, in FIGS. 10A and 10B, the case in which a source follower circuit is combined with a differential amplifier circuit is described as the simplest case. Thus, the circuit structure is not limited to FIGS. 10A and 10B.
[0163] In the operational amplifier shown in FIG. 10A, characteristics are defined by a relationship between the input voltages V<sub>in1 </sub>and V<sub>in2 </sub>and the output voltage V<sub>out</sub>. More specifically, the operational amplifier has a function of outputting the output voltage V<sub>out </sub>by multiplying a voltage of a difference between the input voltage V<sub>in1 </sub>and the input voltage V<sub>in2 </sub>by a degree of amplification A.
[0164] In the operational amplifier shown in FIG. 10B, the gate electrode of the transistor <b>274</b> is an input terminal, and the input voltage V<sub>in1 </sub>is inputted to the gate electrode of the transistor <b>274</b>. In addition, the gate electrode of the transistor <b>275</b> is also an input terminal, and the input voltage V<sub>in2 </sub>is inputted to the gate electrode of the transistor <b>275</b>. In addition, a voltage of the source region of the transistor <b>292</b> becomes the output voltage V<sub>out</sub>. Further, a bias voltage is inputted to the gate electrode of the transistor <b>286</b>.
[0165] In the circuit shown in FIG. 10B, a portion enclosed by a dotted line denoted by reference numeral <b>305</b> has the same structure as the differential amplifier circuit shown in FIG. 8. Further, since a portion enclosed by a dotted line denoted by reference numeral <b>306</b> is the same as the source follower circuit shown in FIGS. 1 and 2, a description of a detailed structure of the operational amplifier shown in FIG. 10B will be omitted.
[0166] In addition, an operational amplifier in the case in which a transistor <b>299</b> is the p-channel type is shown in FIGS. 21A and 21B. In FIG. 21B, one terminal of a capacitance device <b>300</b> is connected to the drain region of the transistor <b>275</b> via the switches <b>302</b> and <b>278</b>.
[0167] Note that it is possible to arbitrarily combine this embodiment with the embodiments 1 and 2.
[0168] (Embodiment 4)
[0169] This embodiment explains a pixel and a driving circuit (a bias circuit) of the configuration and operation in a semiconductor device having a photoelectric device to which the invention is applied, by using FIGS. 11 and 12.
[0170] The semiconductor device shown in FIG. 11A has a pixel region <b>702</b> having a plurality of pixels arranged in a matrix form on a substrate <b>701</b>. Around the pixel region <b>702</b>, there are provided a signal-line drive circuit <b>703</b> and first to fourth scanning line drive circuits <b>704</b> to <b>707</b>. Although the semiconductor device of FIG. 11A has the signal line drive circuit <b>703</b> and the first to fourth scanning line drive circuits <b>704</b> to <b>707</b>, the invention is not limited to this, i.e. the signal line drive circuit and scanning line drive circuits are arbitrarily arranged in the number depending upon a pixel configuration. Also, signals are externally supplied to the signal line drive circuit <b>703</b> and first to fourth scanning line drive circuits <b>704</b> to <b>707</b> through an FPC <b>708</b>. However, the invention is not limited to this but the electric circuits other than the pixel region may be use an IC to externally supply signals.
[0171] First explained is a configuration of the first scanning line drive circuit <b>704</b> and second scanning line drive circuit <b>705</b>, by using FIG. 11B. The third scanning line drive circuit <b>706</b> and the fourth scanning line drive circuit <b>707</b> conform to the diagram of FIG. 11B, and hence graphic display is omitted.
[0172] The first scanning line drive circuit <b>704</b> has a shift register <b>709</b> and a buffer <b>710</b>. The second scanning line drive circuit <b>705</b> has a shift register <b>711</b> and a buffer <b>712</b>. Briefly explain the operation, the shift register <b>709</b>, <b>711</b> sequentially outputs sampling pulses according to a clock signal (G-CLK), start pulse (S-SP) and clock inversion signal (G-CLKb). Thereafter, the pulse amplified by the buffer <b>710</b>, <b>712</b> is inputted to scanning lines and made in a selective state row by row.
[0173] Note that configuration may be made such that a level shifter is arranged between the shift register (<b>709</b>, <b>711</b>) and the buffer (<b>710</b>, <b>712</b>). The arrangement of a level shifter circuit can increase voltage amplitude.
[0174] Next explained is the configuration of the signal line drive circuit <b>703</b>, by using FIG. 11C.
[0175] The signal line drive circuit <b>703</b> has a signal output line drive circuit <b>715</b>, a sample hold circuit <b>716</b>, a bias circuit <b>714</b> and an amplifier circuit <b>717</b>. If functions of each circuits are easily explained, the bias circuit <b>714</b>, in a pair with an amplifier transistor of each pixel, forms a source follower circuit. The sample hold circuit <b>716</b> has a function to temporarily store a signal, make an analog-digital conversion and reduce noise. The signal output line drive circuit <b>715</b> has a signal output function to sequentially output temporarily stored signals. The amplifier circuit <b>717</b> has a circuit to amplify a signal outputted from the sample hold circuit <b>716</b> and signal output line drive circuit <b>715</b>. Incidentally, the amplifier circuit <b>717</b> may not be arranged where no signal amplification is required.
[0176] Explanation is made on the configuration and operation of a circuit of a pixel <b>713</b> arranged at i-th column and j-th row in the pixel region <b>702</b> and a bias circuit <b>714</b> at around the i-th column, by using FIG. 12.
[0177] First explained is the configuration of the circuit of the pixel <b>713</b> arranged at i-th column and j-th row and the bias circuit <b>714</b> at around the i-th column.
[0178] The pixel of FIG. 12 has first to fourth scanning lines Ga(j) to Gd(j), a signal line S(i) and a power line V(i), and also an n-channel transistor <b>255</b>, a photoelectric converter device <b>257</b> and switches <b>250</b> to <b>254</b>.
[0179] Although the transistor <b>255</b> is the n-channel type in this embodiment, the invention is not limited to this, i.e. it may be a p-channel type. However, because the transistor <b>255</b> and the transistor <b>260</b> form a source follower circuit, the both transistors are preferably in the same polarity.
[0180] The switches <b>250</b> to <b>254</b> are semiconductor devices having switching functions, which preferably use transistors. The switches <b>251</b> and <b>252</b> are on-off controlled according to a signal inputted through the first scanning line Ga(j). The switch <b>250</b> is on-off controlled according to a signal inputted through the second scanning line Gb(j). The switch <b>253</b> is on-off controlled according to a signal inputted through the third scanning line Gc(j). The switch <b>254</b> is on-off controlled according to a signal inputted through the fourth scanning line Gd(j).
[0181] The transistor <b>255</b> has source and drain regions one of which is connected to a power line V(i) and the other is connected to a signal line S(i) through the switch <b>250</b>. The transistor <b>255</b> has a gate electrode connected to one terminal of a capacitance device <b>256</b>. The other terminal of the capacitance device <b>256</b> is connected to one terminal of a photoelectric converter device <b>257</b> through the switch <b>253</b>. The other terminal of the photoelectric converter device <b>257</b> is connected to a power line <b>258</b>. The power line <b>258</b> is applied with a ground potential V<sub>ss</sub>. The capacitance device <b>256</b> has a role to hold a voltage between the gate and the source (a threshold voltage) of the transistor <b>255</b>.
[0182] The bias circuit <b>714</b> has a transistor <b>260</b>, a capacitance device <b>261</b> and switches <b>259</b>, <b>262</b> and <b>263</b>. The transistor <b>260</b> has a source region connected to a power line <b>264</b> and a drain region connected to the signal line S(i). The power line <b>264</b> is applied with a ground potential V<sub>ss</sub>. The transistor <b>260</b> has a gate electrode connected to one terminal of the capacitance device <b>261</b>. The other terminal of the capacitance device <b>261</b> is connected to the power line <b>264</b> via a switch <b>262</b>. The capacitance device <b>261</b> has a role to hold a voltage between the gate and the source (a threshold voltage) of the transistor <b>260</b>.
[0183] In FIG. 12, the region surrounded by the dotted line shown at <b>719</b> and region surrounded by the dotted line shown at <b>714</b> corresponds to a source follower circuit.
[0184] Next explained briefly is the operation of the circuit of the pixel <b>713</b> arranged at i-th column and j-th row and the bias circuit <b>714</b> at around the i-th column.
[0185] At first, the switches <b>250</b> to <b>252</b> of the pixel <b>713</b> and the switches <b>259</b> and <b>262</b> of the bias circuit <b>714</b> are turned into an on-state. The other switches than those are turned off. Thereupon, a potential difference is caused between the power source line V(i) and the power source line <b>264</b>. As a result, a current flows toward the power source line <b>264</b> from the power source line V(i) via switches <b>252</b> and <b>251</b>, then, via switches <b>250</b> and <b>259</b>, and then, via the switch <b>262</b>.
[0186] In the instant a current begins to flow, no charge is held on the capacitance devices <b>256</b>, <b>261</b>. Consequently, the transistors <b>255</b>, <b>260</b> are off.
[0187] Then, charge is gradually built up on the capacitance devices <b>256</b> and <b>261</b> to cause a potential difference between the both electrodes of the capacitance devices <b>256</b>, <b>261</b>. When the potential difference between the both electrodes of the capacitance devices <b>256</b> and <b>261</b> reaches a threshold voltage of the transistors <b>255</b>, <b>260</b>, the transistors <b>255</b> and <b>260</b> turn on.
[0188] Then, charges continue to accumulate in the capacitance devices <b>256</b> and <b>261</b> until they become a steady state.
[0189] After the capacitance devices <b>256</b> and <b>261</b> complete the charge storage into a steady state, the switch <b>250</b> is turned off. The switches <b>251</b>, <b>252</b> are kept on. The switches <b>259</b>, <b>262</b> are also kept on. The other switches than the above are all off.
[0190] Then, positive electric charges held in the capacitance device <b>256</b> flow in the direction of the capacitance device <b>256</b> via the switch <b>252</b>, the transistor <b>255</b> and the switch <b>251</b>. More specifically, the positive electric charges held in the capacitance device <b>256</b> flow in the direction of the capacitance device <b>256</b> via the switch <b>252</b>, the source region of the transistor <b>255</b>, the drain region thereof, and the switch <b>251</b>. As a result, the potential difference between both the electrodes of the capacitance device <b>256</b> are decreasing. This operation is performed until the transistor <b>255</b> is turned off. That is, the operation is continued until the electric charges held in the capacitance element <b>256</b> become the same value as the threshold voltage of the transistor <b>255</b>.
[0191] In addition, positive electric charges held in the capacitance device <b>261</b> flow in the direction of the power supply line <b>264</b> via the switch <b>259</b>, the transistor <b>260</b>. More specifically, positive electric charges held in the capacitance device <b>261</b> flow to the power supply line <b>264</b> via a switch <b>259</b>, the source region of the transistor <b>260</b> and the drain region thereof. This operation is performed until the transistor <b>260</b> is turned OFF. That is, the operation is continued until the electric charges held in the capacitance device <b>261</b> become the same value as the threshold voltage of the transistor <b>260</b>.
[0192] At this time, the threshold voltage of the transistor <b>255</b> is held in the capacitance device <b>256</b> and the threshold voltage of the transistor <b>260</b> is held in the capacitance device <b>261</b>. Subsequently, in this state, the switches <b>250</b>, <b>253</b> in the pixel <b>713</b> are turned on while the other switches than those are turned off. The switch <b>263</b> in the bias circuit <b>714</b> is turned on while the other switches than those are turned off.
[0193] Thereupon, the gate electrode of the transistor <b>255</b> is inputted by a signal from the photoelectric converter device <b>257</b> through the capacitance device <b>256</b>. At the same time, the gate electrode of the transistor <b>260</b> is inputted by a bias potential V<sub>b </sub>from through the capacitance device <b>261</b>.
[0194] At this time, the gate electrode of the transistor <b>255</b> is inputted by a value having the signal of from the photoelectric converter device <b>257</b> added onto the threshold voltage held on the transistor. The gate electrode of the transistor <b>260</b> is inputted by a value having the bias potential added onto the threshold voltage held on the transistor. Namely, the signals to be inputted to the gate electrode of the transistors <b>255</b> and <b>260</b> are signals to be inputted to gate electrodes of the transistor in addition to the threshold voltage held on transistors <b>255</b> and <b>260</b>. Consequently, it is possible to suppress against the affection of transistor characteristic variation.
[0195] Then, the potential on the source region of the transistor <b>255</b> becomes an output potential V<sub>out</sub>. The output potential V<sub>out </sub>is outputted, as a signal having been read by the photoelectric converter device <b>257</b>, onto the signal line S(i) via the switch <b>250</b>.
[0196] Next, the switch <b>254</b> is turned on while the other switches than those are turned off, to initialize the photoelectric converter device <b>257</b>. More specifically, the charge held by the photoelectric converter device <b>257</b> is allowed to flow toward the power line V(i) through the switch <b>254</b> such that the potential on an n-channel terminal of the photoelectric converter device <b>257</b> becomes equal to the potential on the power line <b>258</b>. From then on, the above operation is repeated.
[0197] The semiconductor device having the above configuration can suppress against the affection of a transistor threshold voltage variation.
[0198] The invention can be desirably combined with Embodiments 1-3.
[0199] (Embodiment 5)
[0200] This embodiment explains an example, different from Embodiments 2 to 4, of an electric circuit to which the invention is applied, by using FIGS. <b>13</b> to <b>16</b>.
[0201] In FIG. 13A, 310 is the source follower circuit of FIGS. 1 and 2. Since the circuit configuration and operation of the source follower circuit <b>310</b> is similar to that of FIGS. 1 and 2, description is omitted in this embodiment.
[0202] The operation of the source follower circuit <b>310</b> is to be roughly divided with setting and output operations, as mentioned before. Incidentally, setting operation is an operation to hold predetermined charge on a capacitance element, which corresponds to the operation in FIGS. <b>1</b>A, B and <b>2</b>A. Meanwhile, output operation is an operation to input an input voltage V<sub>in </sub>and a bias potential V<sub>b </sub>to take out an output potential V<sub>out</sub>, which corresponds to the operation in FIG. 2B.
[0203] In the source follower circuit <b>310</b>, a terminal a corresponds to the input terminal while a terminal b corresponds to the output terminal. The switches <b>216</b>, <b>218</b>, and <b>221</b> are controlled by a signal inputted through a terminal c. The switches <b>215</b>, <b>217</b>, <b>220</b> and <b>222</b> are controlled according to a signal inputted through a terminal d. The switch <b>129</b> is controlled according to a signal inputted through a terminal e.
[0204] In designing an electric circuit having a source follower circuit <b>310</b>, it is preferred to arrange at least two source follower circuits <b>315</b> and <b>316</b> as shown in FIG. 13B. One of the source follower circuits <b>315</b> and <b>316</b> is preferably to carry out a setting operation while the other is to carry out an output operation. Because this can carry out two operations at the same time, there is no uselessness in operation requiring useless time. Thus, electric circuit operation can be effected at high speed.
[0205] For example, in a design using a source follower circuit to a signal-line drive circuit, at least two source follower circuits are preferably arranged on each signal lines. In a design using a source follower circuit to a scanning-line drive circuit, at least two source follower circuits are preferably arranged on each scanning lines. In a design using a source follower circuit on the pixel, at least two source follower circuits are preferably arranged on each pixel.
[0206] In FIG. 13B, 311 to <b>314</b> are devices having switch functions, preferably transistors are used. When the switches <b>311</b> and <b>312</b> are on, the switches <b>313</b> and <b>314</b> are off. When the switches <b>311</b> and <b>312</b> are off, the switches <b>313</b> and <b>314</b> are on. In this manner, of the two source follower circuits <b>315</b> and <b>316</b>, one is cause to carry out a setting operation while the other is caused to carry out an output operation. Incidentally, the two source follower circuits <b>315</b> and <b>316</b> may be controlled by controlling the switches <b>216</b> and <b>218</b> possessed by the source follower circuit <b>310</b> without arranging the switches <b>311</b> to <b>314</b>.
[0207] Although, in this embodiment, the region surrounded by the dotted line <b>315</b>, <b>316</b> was assumed corresponding to the source follower circuit, the invention is not limited to this, i.e. the differential amplifier circuit, operational amplifier or the like shown in FIGS. <b>7</b> to <b>10</b> or the like may be applied.
[0208] This embodiment explains the configuration and operation of a signal-line drive circuit having at least two source follower circuits arranged based on each signal lines, by using FIGS. <b>14</b> to <b>16</b>.
[0209]FIG. 14 shows a signal-line drive circuit. The signal-line drive circuit has a sift register <b>321</b>, a first latch circuit <b>322</b>, a second latch circuit <b>323</b>, a D/A converter circuit <b>324</b> and a signal amplifier circuit <b>325</b>.
[0210] Note that, in the case that the first latch circuit <b>322</b> or second latch circuit <b>323</b> is a circuit capable of storing analog data, the D/A converter circuit <b>324</b> in many cases is to be omitted. In the case that the data to be outputted onto the signal line is binary, i.e. digital amount, the D/A converter circuit <b>324</b> in many cases is to be omitted. Meanwhile, the D/A converter circuit <b>324</b>, in a certain case, incorporates therein a gamma-correction circuit. In this manner, the signal-line drive circuit is not limited to the configuration of FIG. 17.
[0211] Briefly explaining the operation, the shift register <b>321</b> is configured using a plurality of columns of flip-flop circuits (FFs) or the like, to input an input clock signal (S-CLK), a start pulse (SP) and a clock inversion signal (S-CLKb). Sampling pulses are to be sequentially outputted according to the timing of these signals.
[0212] The sampling pulse outputted from the shift register <b>321</b> is inputted to the first latch circuit <b>322</b>. The first latch circuit <b>322</b> is inputted with a video signal, to hold the video signal on each column according to the input timing of the sampling pulse.
[0213] In the first latch circuit <b>322</b>, when video-signal holding is completed to the last column, a latch pulse is inputted to the second latch circuit <b>323</b> during a horizontal retrace period. Thus, the video signals held on the first latch circuit <b>322</b> are transferred, at one time, to the second latch circuit <b>323</b>. Thereafter, the video signals held on the second latch circuit <b>323</b> are inputted, simultaneously in an amount of one row, to the D/A converter circuit <b>324</b>. The signal to be inputted from the D/A converter circuit <b>324</b> is inputted to the signal amplifier circuit <b>325</b>.
[0214] While the video signal held on the second latch circuit <b>323</b> is being inputted to the D/A converter circuit <b>324</b>, the shift register <b>321</b> again outputs a sampling pulse. From then on, the operation is repeated.
[0215] Explanation is made on the configuration of the signal amplifier circuit <b>325</b> at around i-th column to (i+2)-th column, or three, signal lines, by using FIG. 15. The signal amplifier circuit <b>325</b> has two source follower circuits <b>315</b> and <b>316</b> on each column. Each of the source follower circuits <b>315</b> and <b>316</b> has five terminals, i.e. terminal a to terminal e. The terminal a corresponds to an input terminal of the source follower circuit <b>315</b> and <b>316</b> while the terminal b corresponds to an output terminal of the source follower circuit <b>315</b> and <b>316</b>. Meanwhile, the switches <b>216</b>, <b>218</b> and <b>221</b> are controlled according to a signal inputted through the terminal c while the switches <b>215</b>, <b>217</b>, <b>220</b> and <b>222</b> are controlled according to a signal inputted through the d. Furthermore, the switch <b>219</b> is controlled according to a signal inputted through the terminal e.
[0216] In the signal amplifier circuit <b>325</b> shown in FIG. 15, a logic operator is arranged between the three signal lines, i.e. signal line for initialization <b>326</b>, a setting signal line <b>327</b> and a threshold signal line <b>328</b> and the source follower circuit <b>315</b> and <b>316</b>. <b>329</b> is an inverter, <b>330</b> is an AND, <b>331</b> is an OR, <b>332</b> is an inverter, <b>333</b> is an AND, <b>334</b> is an inverter and <b>335</b> is an OR. Inputted, to the terminal c to terminal e, is either a signal outputted from the setting signal line <b>327</b> or a signal outputted from an output terminal of the above-mentioned logic operators.
[0217] Next explained are the signals to be outputted from the three signal lines, i.e. the signal line for initialization <b>326</b>, the setting signal line <b>327</b> and the threshold signal line <b>328</b>, and the signals to be inputted to the switches through the terminal c to terminal e of the source follower circuit <b>315</b> by using FIG. 16.
[0218] Note that the switch the signal is to be inputted through the terminal c to terminal e is turned on when a High signal is inputted and off when a Low signal is inputted.
[0219] The signals as shown in FIG. 16 are inputted through the three signal lines, i.e. the signal line for initialization <b>326</b>, the setting signal line <b>327</b> and the threshold signal line <b>328</b>. Furthermore, a signal outputted from the setting signal line <b>327</b> is inputted, as it is, to the terminal c of the source follower circuit <b>315</b>. A signal outputted from an output terminal of the AND <b>333</b> is inputted to the terminal d while a signal outputted from an output terminal of the OR <b>331</b> is inputted to the terminal e. By doing so, the source follower circuit <b>315</b> can be controlled for any one of setting and outputting operations.
[0220] Also, a signal outputted from an output terminal of the inverter <b>332</b> is inputted to the terminal c of the source follower circuit <b>316</b>. A signal outputted from an output terminal of the AND <b>330</b> is inputted to the terminal d while a signal outputted from the OR is inputted, as it is, to the terminal e. By doing so, the source follower circuit <b>316</b> can be controlled for any one of setting and outputting operations.
[0221] Incidentally, the signal line drive circuit, in many cases, has a plurality of pixels connected at the end of each signal line thereof. The pixel, in many cases, is to change its state depending upon a voltage inputted through the signal line. This may be a pixel having a liquid crystal device or a light emitting device typified by an organic EL, for example. Besides these, connection is possible with a device of various configurations.
[0222] This embodiment can be desirably combined with Embodiments 1 to 4.
[0223] (Embodiment 6)
[0224] The electronic apparatus using the electric circuit of the invention includes a video camera, a digital camera, a goggle-type display (head-mount display), a navigation system, an audio reproducing apparatus (car audio unit, audio components, etc.), a laptop, a game apparatus, a personal digital assistant (mobile computer, cellular phone, portable game machine or electronic book, etc.), an image reproducing apparatus having a recording medium (specifically, apparatus for reproducing a recording medium such as a Digital Versatile Disk (DVD) etc. and having a display to display an image thereof) and the like. FIGS. 20A to <b>20</b>H show detailed examples of these electronic apparatus.
[0225]FIG. 20A is a display (light emitting apparatus) including a housing <b>3001</b>, a support base <b>3002</b>, a display part <b>3003</b>, a speaker part <b>3004</b>, a video-input terminal <b>3005</b> and the like. The present invention can be used in an electric circuit configuring the display part <b>3003</b>. Also, the light emitting apparatus of FIG. 20A can be completed by the invention. Because the light emitting apparatus is of a spontaneous emission type, a backlight is not required. Thus, the display part can be made smaller in thickness than the liquid crystal display. Incidentally, the light emitting apparatus includes a display unit for displaying all the pieces of information for personal computers, TV broadcast reception, displaying advertisement and so on.
[0226]FIG. 20B is a digital still camera, including a main body <b>3101</b>, a display part <b>3102</b>, an image receiving part <b>3103</b>, operation keys <b>3104</b>, an external connection port <b>3105</b>, a shutter <b>3106</b> and the like. The invention can be used in an electric circuit configuring the display part <b>3102</b>. Also, the digital still camera of FIG. 20B is to be completed by the invention.
[0227]FIG. 20C is a laptop, including a main body <b>3201</b>, a housing <b>3202</b>, a display part <b>3203</b>, a keyboard <b>3204</b>, an external connection port <b>3205</b>, a pointing mouse <b>3206</b> and the like. The invention can be used in an electric circuit configuring the display part <b>3203</b>. Also, the light emitting device of FIG. 20C is to be completed by the invention.
[0228]FIG. 20D is a mobile computer, including a main body <b>3301</b>, a display part <b>3302</b>, a switch <b>3303</b>, operation keys <b>3304</b>, an infrared ray port <b>3305</b> and the like. The invention can be used in an electric circuit configuring the display part <b>3302</b>. Also, the mobile computer of FIG. 20D is completed by the invention.
[0229]FIG. 20E is a portable image reproducing apparatus having a recording medium (specifically, DVD reproducing apparatus), including a main body <b>3401</b>, a housing <b>3402</b>, a display part-A <b>3403</b>, a display part-B <b>3404</b>, a recording-medium (DVD or the like) reading part <b>3405</b>, operation keys <b>3406</b>, a speaker part <b>3407</b> and the like. The display part-A <b>3403</b> is to display, mainly, image information while the display part-B <b>3404</b> is to display, mainly, character information. The invention can be used in an electric circuit configuring the display parts A, B <b>3403</b>, <b>3404</b>. Incidentally, the image reproducing apparatus having a recording medium includes a home-use game apparatus and the like. Also, the DVD reproducing apparatus of FIG. 20E is to be completed by the invention.
[0230]FIG. 20F is a goggle-type display (head-mount display), including a main body <b>3501</b>, a display part <b>3502</b> and an arm part <b>3503</b>. The invention can be used in an electric circuit configuring the display part <b>3502</b>. Also, the goggle-type display of FIG. 20F is to be completed by the invention.
[0231]FIG. 20G is a video camera, including a main body <b>3601</b>, a display part <b>3602</b>, a housing <b>3603</b>, an external-connection port <b>3604</b>, a remote-control receiving part <b>3605</b>, an image receiving part <b>3606</b>, a battery <b>3607</b>, a sound input part <b>3608</b>, operation keys <b>3609</b> and the like. The invention can be used in an electric circuit configuring the display part <b>3602</b>. Also, the video camera of FIG. 20G is to be completed by the invention.
[0232]FIG. 20H is a cellular phone, including a main body <b>3701</b>, a housing <b>3702</b>, a display part <b>3703</b>, a sound input part <b>3704</b>, a sound output part <b>3705</b>, operation keys <b>3706</b>, an external-connection port <b>3707</b>, an antenna <b>3708</b> and the like. The invention can be used in an electric circuit configuring the display part <b>3703</b>. Incidentally, the display part <b>3703</b> can suppress the cellular phone from consuming current by displaying white characters on a black background. Also, the cellular phone of FIG. 20H is to be completed by the invention.
[0233] Incidentally, if light emitting material will increase light emission brightness in the future, the light containing output image information can be used, by magnifying and projecting by a lens or the like, on a front or rear type projector.
[0234] Meanwhile, concerning the above electronic apparatuses, there are increasing cases to display the information distributed through an electronic communication line, such as the Internet or CATV (cable television). Particularly, there are increased occasions to display moving-image information. Because light emitting material has a very high response speed, the light emitting device is preferred for displaying moving-images.
[0235] Meanwhile, it is desired for the light emitting device to display information such that a light emitting area is reduced to a possible less extent because the light emitting area consumes power. Accordingly, in the case of using a light emitting device in a display part, mainly for character information, of a personal digital assistant such as particularly a cellular phone or audio reproducing apparatus, it is desired to carry out driving such that character information is formed by a light emitting part with non-emitting part provided as a background.
[0236] As described above, the present invention, having an extremely broad scope of application, can be used on an electronic apparatus in every field. Also, the electronic apparatus of the embodiment may use any configuration of the electric circuits and semiconductor devices shown in Embodiments 1 to 5.
[0237] The present invention which realizes the effect of controlling the affection of a characteristic variation of TFT greatly contributes to the technology which forms a pixel and a driving circuit on the same substrate by using polycrystal semiconductor (polysilicon). And an especially excellent effect is brought to the personal digital assignment among the above-mentioned electronics.
[0238] Advantage of the Invention
[0239] The present invention provides an electric circuit which is arranged such that both electrodes of a capacitance device can hold a voltage between the gate and the source of a specific transistor. Further, the present invention provides an electric circuit which has a function capable of setting a potential difference between both electrodes of a capacitance device so as to be a threshold voltage of a specific transistor.
[0240] Moreover, in the present invention, a voltage between the gate and the source of a specific transistor held in a capacitance device is preserved as it is, and a signal voltage (voltage of a video signal, etc.) is inputted to a gate electrode of the transistor. Then, a voltage with the signal voltage added to the voltage between the gate and the source preserved in the capacitance device is inputted to the gate electrode of the transistor. As a result, a value found by adding a threshold voltage of the transistor and the signal voltage is inputted to the gate electrode of the transistor. That is, in the present invention, even if threshold voltages fluctuate among transistors, the value found by adding the threshold value of the transistor and the signal voltage is always inputted to a transistor to which a signal voltage is inputted. Thus, an electric circuit can be provided in which an influence of the variation of threshold values among transistors is suppressed.
[0241] Accordingly, other embodiments are within the scope of the following claims.
Contents5
24 sheets
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Numbers
- Publication, DOCDB
- 2003174009
- Publication, EPODOC
- US2003174009
- Application
- 304061
- Application, DOCDB
- 30406102
- Application, EPODOC
- US20020304061
Titles
- English
- Electric circuit
Classification
- CPC, 12
- H03K19/00384
- G09G3/3225
- H03K19/01728
- H03F3/45
- H10D84/811
- H03F3/45076
- H03F3/45179
- H03F2203/45112
- H03F2203/45628
- G09G3/3648
- G09G2300/0833
- G09G2300/0876
- IPC, 2
- H03K19 003
- H03K19 017
- USPC, 1
- 327427000