Electrostatic breakdown prevention circuit for semiconductor device
Claim Score by NHIP
Abstract
A high impedance can be maintained at a back gate of a MOS transistor constituting a CMOS integrated circuit when power is not supplied, and is switched to an impedance lower than the impedance in use of the CMOS integrated circuit by a switch driven by a power supply of the CMOS integrated circuit. Thus, it is possible to prevent surge breakdown and electrostatic breakdown, and to prevent occurrence of latch up breakdown.

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Projected expiry passed 10 October 2022, 4 years ago.
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6 claims: 2 independent, 4 dependent
- 1Broadest claimClaim Score 75, broad(NHIP)An electrostatic breakdown prevention circuit for a semiconductor device comprising:an impedance applying unit which applies an impedance to a back gate of a MOS transistor constituting a CMOS integrated circuit;and a switch which is driven by a power supply of the CMOS integrated circuit and which performs a switching operation such that the impedance applied by the impedance applying unit is switched to an impedance lower than the impedance in use of the CMOS integrated circuit.
- 4An electrostatic breakdown prevention circuit for a semiconductor device comprising:an impedance applying unit which applies an impedance to a back gate of a MOS transistor constituting a CMOS integrated circuit;a switch which is driven by a power supply of the CMOS integrated circuit and which performs a switching operation such that the impedance applied by the impedance applying unit is switched to an impedance lower than the impedance in use of the CMOS integrated circuit;and a delay unit which delays the switching operation of the switch to the lower impedance for a certain period of time when a power supply potential of the CMOS integrated circuit temporarily rises.
Independent claims2
98 paragraphs in 4 sections, as filed
BACKGROUND OF THE INVENTION
[0001] 1) Field of the Invention
[0002] The present invention relates to a circuit which prevents electrostatic breakdown of MOS transistors constituting the semiconductor device (e.g. CMOS integrated circuit).
[0003] 2) Description of the Related Art
[0004] In recent years, semiconductor integrated circuits are developed centering around the MOS transistor technique, and are increased in scale and speed by development of a micropatterning technique. In a present MOS integrated circuit, the following technique is dominated. The gate electrodes of a PMOS transistor and an NMOS transistor are connected to each other to be an input terminal, and both the drain electrodes are connected to each other to be an output terminal, so that a complementary MOS circuit (CMOS circuit) is constituted.
[0005] The gate electrode of MOS transistors constituting the CMOS circuit is formed with an electrode which is highly insulated and another electrode formed on the insulated electrode through a thin highly insulating film, and a capacitor is formed between the electrodes. Therefore, when the capacitor portion is electrically charged, a high voltage may be instantaneously applied to the outside through an electrode pad connected to the transistor. As a result, surge breakdown occurs in another transistor or the like, or the lifetime of the transistor is shortened.
[0006] In contrast to this, when a high voltage is instantaneously applied to the electrode pad connected to the transistor by a switching operation of an external mechanical switch or a semiconductor switch, the capacitor portion of the transistor is electrically charged to generate a high voltage, electrostatic breakdown may occur, or the lifetime of the transistor may be shortened.
[0007] Therefore, a countermeasure against such surge breakdown or electrostatic breakdown is an important factor in a semiconductor integrated circuit in order to maintain a high degree of reliability of products. On the other hand, due to shrinkage and micropatterning of a semiconductor integrated circuit in recent years, the countermeasure against the electrostatic breakdown cannot be easily carried out.
[0008] A countermeasure against electrostatic breakdown which is employed in a conventional semiconductor integrated circuit (semiconductor device) will be described below with reference to FIGS. 10 and 11. FIG. 10 is a circuit diagram which shows an example of a semiconductor device subjected to a conventional countermeasure against electrostatic breakdown. FIG. 11 is a sectional structural view which explains an operation of the semiconductor device shown in FIG. 10.
[0009] In FIG. 10, a method of a countermeasure against electrostatic breakdown for an NMOS transistor circuit is shown. In FIG. 10, an NMOS transistor <b>101</b> has a drain electrode D connected to an electrode pad <b>102</b>, and a source electrode S and a back gate B connected to ground (GND).
[0010] A surge protection circuit <b>103</b> is arranged on a connection line between the drain electrode D and the electrode pad <b>102</b> of the NMOS transistor <b>101</b>. The surge protection circuit <b>103</b> is constituted by a series circuit composed of two diodes D11 and D12. The diode D11 has a cathode connected to a power supply <b>104</b> and an anode connected to the connection line. The diode D12 has a cathode connected to the connection line and an anode connected to the ground (GND).
[0011] With this configuration, when a positive surge voltage is applied to the electrode pad <b>102</b>, an electric current is conducted to the diode D11, and a surge current flows toward the power supply <b>104</b>. For this reason, a current flowing to the drain electrode D of the NMOS transistor <b>101</b> becomes small. When a negative surge voltage is applied to the electrode pad <b>102</b>, an electric current is conducted to the diode D12, and a surge current flows from the ground (GND) to the electrode pad <b>102</b>. For this reason, a current flowing out of the drain electrode D of the NMOS transistor <b>101</b> becomes small. Therefore, the NMOS transistor <b>101</b> is not broken down, and surge breakdown is prevented.
[0012] However, as shown in FIG. 11, a P<sup>+</sup> diffusion layer <b>111</b> on which the back gate B of the NMOS transistor <b>101</b> is formed is connected to the ground (GND). For this reason, when the input impedance of the NMOS transistor <b>101</b> on the basis of the electrode pad <b>102</b> is lower than that of the surge protection circuit <b>103</b>, a surge current penetrates a junction surface between an N diffusion layer <b>112</b> in which the drain electrode D is formed and a P<sup>−</sup> well <b>113</b>, passes through the P<sup>+</sup> diffusion layer <b>111</b> and a P<sup>−</sup> substrate <b>114</b>, and reaches the ground (GND) to cause electrostatic breakdown of the junction surface.
[0013] For this reason, in a conventional art, a transistor size is increased to increase a reverse withstand voltage between the N diffusion layer <b>112</b> in which the drain electrode D is formed and the P<sup>−</sup> well <b>113</b>, so as to prevent the electrostatic breakdown. However, a reduction of a transistor size by reducing the chip size and micropatterning of processes according to the reduction makes the thickness of the N diffusion layer <b>112</b> in which the drain electrode D is formed further smaller. Therefore, it is difficult to obtain a sufficient surge withstand voltage.
[0014] The applicant of this application has developed a semiconductor device which can prevent electrostatic breakdown even though the semiconductor device is constituted by sufficiently micropatterned MOS transistors, and has applied the semiconductor in advance (undisclosed: Japanese Patent Application No. 2001-3501). The outline of the semiconductor device will be described below with reference to FIGS. 7A and 7B. FIGS. 7A and 7B are circuit diagrams which show the configuration of a semiconductor device, subjected to the countermeasure against electrostatic breakdown, which was applied by the applicant in advance.
[0015]FIGS. 7A and 7B show extracted MOS transistors constituting a CMOS integrated circuit. More specifically, FIG. 7A shows an example of a configuration in which a PMOS transistor is subjected to a countermeasure against electrostatic breakdown. FIG. 7B is an example of a configuration in which an NMOS transistor is subjected to a countermeasure against electrostatic breakdown.
[0016] In FIG. 7A, a PMOS transistor <b>21</b> has a source electrode S connected to a power supply <b>24</b> and a drain electrode D connected to an electrode pad <b>22</b>. A surge protection circuit <b>23</b> is arranged for the PMOS transistor <b>21</b>.
[0017] The surge protection circuit <b>23</b> is constituted by a series circuit composed of two diodes D1 and D2. The diode D1 has a cathode connected to the power supply <b>24</b>. The diode D2 has an anode connected to the ground (GND). The anode of the diode D1 and the cathode of the diode D2 are commonly connected to the connection line between the drain electrode D and the electrode pad <b>22</b> of the PMOS transistor <b>21</b>.
[0018] In this configuration, in order to make the input impedance of the PMOS transistor <b>21</b> on the basis of the electrode pad <b>22</b> higher than the input impedance of the surge protection circuit <b>23</b>, a resistor <b>25</b> is arranged between the back gate B of the PMOS transistor <b>21</b> and the power supply <b>24</b>.
[0019] Therefore, when a surge voltage is applied to the electrode pad <b>22</b>, a surge current can be prevented by the resistor <b>25</b> from flowing through the back gate B of the PMOS transistor <b>21</b>, and the electrostatic breakdown and short lifetime of the PMOS transistor <b>21</b> can be prevented.
[0020] In FIG. 7B, an NMOS transistor <b>31</b> has a drain electrode D connected to an electrode pad <b>32</b> and a source electrode S connected to the ground (GND). A surge protection circuit <b>33</b> is arranged for the NMOS transistor <b>31</b>.
[0021] The surge protection circuit <b>33</b> is constituted by a series circuit composed of two diodes D3 and D4. The diode D3 has a cathode connected to a power supply <b>24</b>. The diode D4 has an anode connected to the ground (GND). The anode of the diode D3 and the cathode of the diode D4 are commonly connected to the connection line between the drain electrode D of the NMOS transistor <b>31</b> and the electrode pad <b>32</b>.
[0022] In this configuration, in order to make the input impedance of the NMOS transistor <b>31</b> on the basis of the electrode pad <b>32</b> higher than the input impedance of the surge protection circuit <b>33</b>, a resistor <b>35</b> is arranged between the back gate B of the NMOS transistor <b>31</b> and the ground (GND).
[0023] Therefore, when a surge voltage is applied to the electrode pad <b>32</b>, a surge current can be prevented by the resistor <b>35</b> from flowing through the back gate B of the NMOS transistor <b>31</b>, and the electrostatic breakdown and short lifetime of the NMOS transistor <b>31</b> can be prevented.
[0024] However, when design is such that the back gate of the MOS transistor has a high impedance, in practical use in which the semiconductor device is operated by applying power, a potential easily changes due to disturbance, and a parasitic element is easily formed disadvantageously. This phenomenon will be described below with reference to FIGS. 8 and 9. FIG. 8 is a sectional structural view which explains the internal configuration and operation of a CMOS integrated circuit serving as a semiconductor device shown in FIG. 7. FIG. 9 is a circuit diagram which explains a latch-up phenomenon.
[0025] As shown in FIG. 8, a CMOS circuit <b>40</b> has a structure in which the PMOS transistor <b>21</b> and the NMOS transistor <b>31</b> are complementarily connected to each other. In FIG. 8, P<sup>+</sup> diffusion layers <b>42</b> and <b>43</b> are formed on both the ends of the surface of a P<sup>−</sup> substrate <b>41</b>, respectively. An N<sup>−</sup> well <b>46</b> and a P<sup>−</sup> well <b>47</b> are formed between the P<sup>+</sup> diffusion layers <b>42</b> and <b>43</b> through an N<sup>+</sup> floating layer <b>45</b>.
[0026] The N<sup>−</sup> well <b>46</b> includes an N<sup>+</sup> diffusion layer <b>48</b> having the back gate B, a P diffusion layer <b>49</b> in which a source electrode S is formed, and a P diffusion layer <b>50</b> in which a drain electrode D is formed. A gate electrode G is arranged between the P diffusion layer <b>49</b> and the P diffusion layer <b>50</b>. These components constitute the PMOS transistor <b>21</b>.
[0027] The P<sup>−</sup> well <b>47</b> includes an N diffusion layer <b>51</b> in which a drain electrode D is formed, an N diffusion layer <b>52</b> in which a source electrode is formed, and a P<sup>+</sup> diffusion layer <b>53</b> having the back gate B. A gate electrode G is arranged between the N diffusion layer <b>51</b> and the N diffusion layer <b>52</b>. These components constitute the NMOS transistor <b>31</b>.
[0028] In the CMOS circuit <b>40</b>, when a surge voltage is applied to the electrode pad <b>22</b>, a surge current is just about flowing in the junction surface between the P diffusion layer <b>50</b> and the N<sup>−</sup> well <b>46</b> of the PMOS transistor <b>21</b>. However, since the impedance of the back gate B of the PMOS transistor <b>21</b> is higher than that of the surge protection circuit <b>23</b> due to the presence of the resistor <b>25</b>, the surge current flows into the surge protection circuit <b>23</b>. In this manner, electrostatic breakdown of the junction surface can be prevented.
[0029] When the surge voltage is applied to the electrode pad <b>32</b>, a surge current is just about flowing in the junction surface between the N diffusion layer <b>51</b> and the P<sup>−</sup> well <b>47</b> of the NMOS transistor <b>31</b>. However, since the impedance of the back gate of the NMOS transistor <b>31</b> is higher than that of the surge protection circuit <b>33</b> due to the presence of the resistor <b>35</b>, the surge current flows into the surge protection circuit <b>33</b>. In this manner, electrostatic breakdown of the junction surface can be prevented.
[0030] However, when the back gates B of the PMOS transistor <b>21</b> and the NMOS transistor <b>31</b> have high impedance, a PNP transistor <b>61</b> and an NPN transistor <b>62</b> are easily formed as parasitic elements. The PNP transistor <b>61</b> uses the N<sup>−</sup> well layer <b>46</b> as a base, the P diffusion layer <b>49</b> of the N<sup>−</sup> well <b>46</b> as an emitter, and the P<sup>−</sup> well <b>47</b> as a collector. The NPN transistor <b>62</b> uses the P<sup>−</sup> well <b>47</b> as a base, the N diffusion layer <b>52</b> of the P<sup>−</sup> well <b>47</b> as an emitter, and the N<sup>−</sup> well <b>46</b> as a collector. These transistors are formed with the connection shown in FIG. 9.
[0031] As shown in FIG. 9, the base electrode of the PNP transistor <b>61</b> is connected to the power supply <b>24</b> through the resistor <b>25</b> together with the collector electrode of the NPN transistor <b>62</b>, and the emitter electrode of the PNP transistor <b>61</b> is directly connected to the power supply <b>24</b>. The base electrode of the NPN transistor <b>62</b> is connected to the ground (GND) through the resistor <b>35</b> together with the collector electrode of the PNP transistor <b>61</b>, and the emitter electrode of the NPN transistor <b>62</b> is directly connected to the ground (GND).
[0032] More specifically, the PNP transistor <b>61</b> and the NPN transistor <b>62</b> constitute thyristors having a positive feedback. When the current gains of these transistors satisfy a certain condition and an electric current is conducted to one of the transistors, a large current flows between the power supply <b>24</b> and the ground (GND) through the junction surface, and a latch-up phenomenon which breaks down the element occurs. Therefore, the high impedance of the back gates B of the PMOS transistor <b>21</b> and the NMOS transistor <b>31</b> decrease a latch-up tolerance.
SUMMARY OF THE INVENTION
[0033] It is an object of this invention to provide an electrostatic breakdown prevention circuit for a semiconductor device which can prevent occurrence of latch up and electrostatic breakdown of a semiconductor device which is a micropatterned semiconductor integrated circuit.
[0034] The electrostatic breakdown prevention circuit for a semiconductor device according to one aspect of this invention includes an impedance applying unit which applies an impedance to a back gate of a MOS transistor constituting a CMOS integrated circuit, and a switch which is driven by a power supply of the CMOS integrated circuit and which performs a switching operation such that the impedance applied by the impedance applying unit is switched to an impedance lower than the impedance in use of the CMOS integrated circuit.
[0035] According to this invention, the high impedance is maintained at the back gate when the power is not supplied, and is switched to an impedance lower than the impedance by the switch when the power is supplied. Thus, it is possible to prevent surge breakdown and electrostatic breakdown, and to prevent occurrence of latch up breakdown.
[0036] The electrostatic breakdown prevention circuit for a semiconductor device according to another aspect of this invention includes an impedance applying unit which applies an impedance to a back gate of a MOS transistor constituting a CMOS integrated circuit, a switch which is driven by a power supply of the CMOS integrated circuit and which performs a switching operation such that the impedance applied by the impedance applying unit is switched to an impedance lower than the impedance in use of the CMOS integrated circuit, and a delay unit which delays the switching operation of the switch to the lower impedance for a certain period of time when a power supply potential of the CMOS integrated circuit temporarily rises.
[0037] According to this invention, even if only a single power supply is disposed, provision of the delay unit makes it possible to prevent surge breakdown and electrostatic breakdown when the power is not supplied, and to prevent latch up breakdown when the power is supplied.
[0038] These and other objects, features and advantages of the present invention are specifically set forth in or will become apparent from the following detailed descriptions of the invention when read in conjunction with the accompanying drawings.
BRIEF DESCRIPTION OF THE DRAWINGS
[0039]FIGS. 1A to <b>1</b>C are diagrams which show configurations of an electrostatic breakdown prevention circuit for a semiconductor device according to a first embodiment of the present invention,
[0040]FIG. 2 is a sectional structural view which explains the internal configuration of a CMOS inverter shown in FIG. 1C and the operation of the electrostatic breakdown prevention circuit,
[0041]FIG. 3 is a diagram which explains suppression of a thyristor operation by the electrostatic breakdown prevention circuit for the semiconductor device shown in FIG. 1,
[0042]FIGS. 4A and 4B are diagrams which show configurations of an electrostatic breakdown prevention circuit for a semiconductor device according to a second embodiment of the present invention,
[0043]FIGS. 5A and 5B are diagrams which show configurations of an electrostatic breakdown prevention circuit for a semiconductor device according to a third embodiment of the present invention,
[0044]FIGS. 6A and 6B are diagrams which show configurations of an electrostatic breakdown prevention circuit for a semiconductor device according to a fourth embodiment of the present invention,
[0045]FIGS. 7A and 7B are diagrams which show the configuration of a semiconductor device subjected to a countermeasure against electrostatic breakdown which was applied by the applicant of this application in advance,
[0046]FIG. 8 is a sectional structural view which explains the operation of the semiconductor device shown in FIG. 7,
[0047]FIG. 9 is a circuit diagram which explains a latch-up phenomenon,
[0048]FIG. 10 is a circuit diagram which shows an example of a semiconductor device subjected to a conventional countermeasure against electrostatic breakdown, and
[0049]FIG. 11 is a sectional structural view which explains an operation of the semiconductor device shown in FIG. 10.
DETAILED DESCRIPTION
[0050] Embodiments of the electrostatic breakdown prevention circuit for a semiconductor device according to the present invention will be described in detail below with reference to the accompanying drawings.
[0051] A first embodiment of this invention will be explained below. FIGS. 1A to <b>1</b>C are diagrams which show the configurations of the electrostatic breakdown prevention circuit for a semiconductor device according to the first embodiment. FIG. 1A shows an example of the configuration of an electrostatic breakdown prevention circuit for a PMOS transistor of the MOS transistors constituting a CMOS integrated circuit which is a semiconductor device. FIG. 1B shows an example of the configuration of an electrostatic breakdown prevention circuit for an NMOS transistor of the MOS transistors constituting the CMOS integrated circuit which is a semiconductor device. FIG. 1C shows an example of the configuration of an electrostatic breakdown prevention circuit for a CMOS inverter used in an output circuit.
[0052] In FIG. 1A, a PMOS transistor <b>1</b> has a source electrode S connected to a power supply (Vdd1) <b>2</b> and a drain electrode D connected to an electrode pad <b>3</b>. A resistor <b>4</b>, a PMOS transistor <b>5</b>, and an inverter <b>6</b> are arranged for the PMOS transistor <b>1</b>.
[0053] One end of the resistor <b>4</b> and a drain electrode D of the PMOS transistor <b>5</b> are connected to a back gate B of the PMOS transistor <b>1</b>, and the other end of the resistor <b>4</b> and a source electrode S of the PMOS transistor <b>5</b> are connected to the source electrode S of the PMOS transistor <b>1</b>. A gate electrode G of the PMOS transistor <b>5</b> is connected to a power supply (Vdd2) <b>7</b> through the inverter <b>6</b>.
[0054] The resistor <b>4</b> is arranged to set the back gate B of the PMOS transistor <b>1</b> to a high impedance state. The PMOS transistor <b>5</b> functions as a switch which switches and sets the impedance of the back gate B of the PMOS transistor <b>1</b> between a low impedance state and a high impedance state.
[0055] In FIG. 1B, an NMOS transistor <b>11</b> has a source electrode S connected to the ground (GND) and a drain electrode D connected to an electrode pad <b>12</b>. A resistor <b>13</b> and an NMOS transistor <b>14</b> are arranged for the NMOS transistor <b>11</b>.
[0056] One end of the resistor <b>13</b> and a drain electrode D of the NMOS transistor <b>14</b> are connected to the back gate B of the NMOS transistor <b>11</b>. The other end of the resistor <b>13</b> and a source electrode S of the NMOS transistor <b>14</b> are connected to the ground (GND) like the source electrode S of the NMOS transistor <b>11</b>. A gate electrode G of the NMOS transistor <b>14</b> is directly connected to the power supply (Vdd2) <b>7</b>.
[0057] The resistor <b>13</b> is arranged to set the back gate B of the NMOS transistor <b>11</b> to a high impedance state. The NMOS transistor <b>14</b> functions as a switch which switches and sets the impedance of the back gate B of the NMOS transistor <b>11</b> between a low impedance state and a high impedance state.
[0058] In FIG. 1C, in a CMOS inverter used in an output circuit, the gate electrode G of the PMOS transistor <b>1</b> shown in FIG. 1A and the gate electrode G of the NMOS transistor <b>11</b> shown in FIG. 1B are connected to each other to be an input terminal, and the drain electrode D of the PMOS transistor <b>1</b> and the drain electrode D of the NMOS transistor <b>11</b> are connected to each other to be an output terminal. The output terminal is connected to a common electrode pad <b>15</b>.
[0059] The power supply (Vdd1) <b>2</b> and the power supply (Vdd2) <b>7</b> are independent power supplies. More specifically, for example, the CMOS integrated circuit which is the semiconductor device has a terminal for the power supply (Vdd1) <b>2</b> and a terminal for the power supply (Vdd2) <b>7</b> as power supply input terminals. As a power supply of the inverter <b>6</b> shown in FIG. 1A, the power supply (Vdd1) <b>2</b> is not used, but the power supply (Vdd2) <b>7</b> is used.
[0060] The operation of the electrostatic breakdown prevention circuit for a semiconductor device according to the first embodiment will be described below with reference to FIG. 1A to FIG. 3. FIG. 2 is a sectional structural view which explains the internal configuration of the CMOS inverter shown in FIG. 1C and the operation of the electrostatic breakdown prevention circuit. FIG. 3 is a diagram which explains suppression of a thyristor operation by the electrostatic breakdown prevention circuit of the semiconductor device shown in FIG. 1.
[0061] The internal configuration of the CMOS inverter will be described below. As shown in FIG. 2, a CMOS inverter <b>150</b> has a structure in which the PMOS transistor <b>1</b> and the NMOS transistor <b>11</b> are complementarily connected to each other. In FIG. 2, P<sup>+</sup> diffusion layers <b>152</b> and <b>153</b> are formed on both the ends of the surface of a P<sup>−</sup> substrate <b>151</b>, respectively. An N<sup>−</sup> well <b>156</b> and a P<sup>−</sup> well <b>157</b> are formed between the P<sup>+</sup> diffusion layers <b>152</b> and <b>153</b> through an N<sup>+</sup> floating layer <b>155</b>.
[0062] The N<sup>−</sup> well <b>156</b> includes an N<sup>+</sup> diffusion layer <b>158</b> having the back gate B, a P diffusion layer <b>159</b> in which a source electrode S is formed, and a P diffusion layer <b>160</b> in which a drain electrode D is formed. Agate electrode G is arranged between the P diffusion layer <b>159</b> and the P diffusion layer <b>160</b>. These components constitute the PMOS transistor <b>1</b>.
[0063] The P<sup>−</sup> well <b>157</b> includes an N diffusion layer <b>161</b> in which a drain electrode D is formed, an N diffusion layer <b>162</b> in which a source electrode is formed, and a P<sup>+</sup> diffusion layer <b>163</b> having the back gate B. A gate electrode G is arranged between the N diffusion layer <b>161</b> and the N diffusion layer <b>162</b>. These components constitute the NMOS transistor <b>11</b>. The P diffusion layer <b>160</b> of the PMOS transistor <b>1</b> and the N diffusion layer <b>161</b> of the NMOS transistor <b>11</b> are connected to the electrode pad <b>15</b>.
[0064] The gate electrode G of the PMOS transistor <b>1</b> and the gate electrode G of the NMOS transistor <b>11</b> are commonly connected to each other. In the PMOS transistor <b>1</b>, the drain electrode D of the PMOS transistor <b>5</b> is connected to the N<sup>+</sup> diffusion layer <b>158</b> having the back gate B, and connected to the power supply (Vdd1) <b>2</b> and the P diffusion layer <b>159</b> having the source electrode S through the resistor <b>4</b>.
[0065] In the NMOS transistor <b>11</b>, the drain electrode D of the NMOS transistor <b>14</b> is connected to the P<sup>+</sup> diffusion layer <b>163</b> having the back gate B, and connected to the ground (GND) and the N diffusion layer <b>162</b> having the source electrode S through the resistor <b>13</b>.
[0066]FIG. 2 shows that the PNP transistor <b>61</b> and the NPN transistor <b>62</b> are formed as parasitic elements. A PNP transistor <b>171</b> uses the N<sup>−</sup> well layer <b>156</b> as a base, the P diffusion layer <b>159</b> of the N<sup>−</sup> well <b>156</b> as an emitter, and the P<sup>−</sup> well <b>157</b> as a collector. An NPN transistor <b>172</b> uses the P<sup>−</sup> well <b>157</b> as a base, the N diffusion layer <b>162</b> of the P<sup>−</sup> well <b>157</b> as an emitter, and the N<sup>−</sup> well <b>156</b> as a collector. These parasitic transistors, the PMOS transistor <b>5</b>, and the NMOS transistor <b>14</b> are related to each other as shown in FIG. 3.
[0067] In FIG. 3, the base electrode of the PNP transistor <b>171</b> is connected to the power supply <b>2</b> through the resistor <b>4</b> together with the collector electrode of the NPN transistor <b>172</b> and connected to the drain electrode D of the PMOS transistor <b>5</b>. The emitter electrode of the PNP transistor <b>171</b> is directly connected to the power supply <b>2</b>. The base electrode of the NPN transistor <b>172</b> is connected to the ground (GND) through the resistor <b>13</b> together with the collector electrode of the PNP transistor <b>171</b> and connected to the drain electrode D of the NMOS transistor <b>14</b>. The emitter electrode of the NPN transistor <b>172</b> is directly connected to the ground (GND).
[0068] More specifically, the PNP transistor <b>171</b> and the NPN transistor <b>172</b> constitute thyristors having a positive feedback. These base potentials can be controlled by the PMOS transistor <b>5</b> and the NMOS transistor <b>14</b>.
[0069] In FIG. 1A to FIG. 3, when disturbance such as a surge voltage is applied to the electrode pad <b>3</b> if no power is applied to the CMOS integrated circuit as the semiconductor device, the voltage at the power supply (Vdd1) <b>2</b> may become temporarily high by a diode formed between the drain electrode D and the back gate B.
[0070] In this instance, the power supply (Vdd2) <b>7</b> which is the drive power supply of the PMOS transistor <b>5</b> is different from the power supply (Vdd1) <b>2</b>. For this reason, the PMOS transistor <b>5</b> is not in an ON state, and is reliably in an OFF state even in a period in which the voltage of the power supply (Vdd1) <b>2</b> is temporarily high. The inverter <b>6</b> shown in FIG. 1A does not use the power supply (Vdd1) <b>2</b> to reliably perform the above operation.
[0071] Therefore, when the voltage of the power supply (Vdd1) <b>2</b> is temporarily high, in the PMOS transistor <b>1</b>, the back gate B is set in a high impedance state by the resistor <b>4</b>. For this reason, even when there is disturbance such that a surge voltage is applied in transportation or packaging of the semiconductor device, the PMOS transistor <b>1</b> is effectively protected from electrostatic breakdown.
[0072] When the CMOS integrated circuit which is the semiconductor device is turned on, the PMOS transistor <b>5</b> and the NMOS transistor <b>14</b> are set in ON states, and the back gates B of the PMOS transistor <b>1</b> and the NMOS transistor <b>11</b> have low impedances. Therefore, as shown in FIG. 3, since the base-emitter voltages of the PNP transistor <b>171</b> and the NPN transistor <b>172</b> serving as parasitic elements are suppressed from being increased, these transistors are suppressed from being operated as thyristors, and a latch-up phenomenon is prevented from occurring.
[0073] As described above, according to the first embodiment, when the power supply is in an OFF state, the impedance of the back gate is kept high. When the power supply is turned on, the impedance of the back gate is switched to a low impedance. For this reason, surge breakdown and electrostatic breakdown can be prevented, and latch-up breakdown can also be prevented.
[0074] A second embodiment of this invention will be explained below. FIGS. 4A and 4B are diagrams which show the configuration of an electrostatic breakdown prevention circuit for a semiconductor device according to the second embodiment. FIG. 4A shows an example of a configuration of an electrostatic breakdown prevention circuit for a PMOS transistor of the MOS transistors constituting a CMOS integrated circuit which is a semiconductor device. FIG. 4B shows an example of a configuration of an electrostatic breakdown prevention circuit for an NMOS transistor of the MOS transistors constituting a CMOS integrated circuit which is a semiconductor device. A CMOS inverter corresponding to the CMOS inverter shown in FIG. 1C is omitted in FIGS. 4A and 4B.
[0075] The same reference numerals as in the first embodiment (FIG. 1) denote the same parts or similar parts as those shown in FIGS. 4A and 4B. Parts related to the second embodiment will be mainly described here.
[0076] As shown in FIGS. 4A and 4B, in the second embodiment, delay circuits (DL) <b>9</b> and <b>16</b> are arranged in the configuration described in the first embodiment (FIG. 1). Therefore, a single power supply (Vdd1) <b>2</b> is used as a power supply.
[0077] In FIG. 4A, the delay circuit (DL) <b>9</b> is arranged between the output terminal of an inverter <b>6</b> and a gate electrode G of a PMOS transistor <b>5</b>. The delay circuit (DL) <b>16</b> is arranged between the power supply (Vdd1) <b>2</b> and a gate electrode G of an NMOS transistor <b>14</b>.
[0078] Each of the delay circuits (DL) <b>9</b> and <b>16</b> is constituted by a resistor and a capacitor. The delay circuits (DL) <b>9</b> and <b>16</b> are arranged for the following reason. That is, when the power supply (Vdd1) <b>2</b> temporarily changes to a high potential, the PMOS transistor <b>5</b> and the NMOS transistor <b>14</b> can be reliably maintained in OFF states within a predetermined period.
[0079] In the second embodiment, in a power-on state, the same operation as that in the first embodiment is performed, and a description thereof will be omitted. An operation performed when the power supply (Vdd1) <b>2</b> temporarily changes to a high potential in a power-off state will be explained.
[0080] Disturbance such as a surge voltage is applied to an electrode pad <b>3</b> when the power supply of the CMOS integrated circuit is in an OFF state. When the voltage of the power supply (Vdd1) <b>2</b> is temporarily high, the delay circuit (DL) <b>9</b> delays the potential of the power supply (Vdd1) <b>2</b> such that the gate potential of the PMOS transistor <b>5</b> gradually reaches a low level, and the delay circuit (DL) <b>16</b> delays the potential of the power supply (Vdd1) <b>2</b> such that the gate potential of the NMOS transistor <b>14</b> gradually reaches a high level, so that the gate potentials are transmitted to the gate electrode G of the PMOS transistor <b>5</b> and the NMOS transistor <b>14</b>.
[0081] When the delay times of the delay circuits (DL) <b>9</b> and <b>16</b> are sufficiently longer than a disturbance apply time, a voltage which turns on the PMOS transistor <b>5</b> and the NMOS transistor <b>14</b> is not applied to the gate electrode G of the PMOS transistor <b>5</b> and the NMOS transistor <b>14</b>. Therefore, even though the same power supply (Vdd1) <b>2</b> as the power supply for the PMOS transistor <b>1</b> to be protected is used as the drive power supply of the PMOS transistor <b>5</b> and the NMOS transistor <b>14</b>, the PMOS transistor <b>5</b> and the NMOS transistor <b>14</b> can be reliably maintained in an OFF state in a period in which the power supply voltage is temporarily high. More specifically, when the CMOS integrated circuit serving as a semiconductor device is not in an OFF state, the impedances of the back gates B of the PMOS transistor <b>1</b> and the NMOS transistor <b>11</b> can be reliably set to be high.
[0082] In this manner, according to the second embodiment, the delay circuits are arranged. For this reason, even though a single power supply is used, as in the first embodiment, surge breakdown and electrostatic breakdown can be prevented in an OFF state, and latch-up breakdown can be prevented in an ON state.
[0083] A third embodiment of this invention will be explained below. FIGS. 5A and 5B are diagrams which show configurations of an electrostatic breakdown prevention circuit for a semiconductor device according to the third embodiment. FIG. 5A shows an example of a configuration of an electrostatic breakdown prevention circuit for a PMOS transistor of the MOS transistors constituting a CMOS integrated circuit which is a semiconductor device. FIG. 5B is an example of a configuration of an electrostatic breakdown prevention circuit for an NMOS transistor of the MOS transistors constituting a CMOS integrated circuit which is a semiconductor device. A CMOS inverter corresponding to the CMOS inverter shown in FIG. 1C is omitted in FIGS. 5A and 5B.
[0084] The same reference numerals as in the first embodiment (FIG. 1) denote the same parts or similar parts in FIGS. 5A and 5B. Parts related to the third embodiment will be mainly described here.
[0085] As shown in FIGS. 5A and 5B, in the third embodiment, surge protection circuits <b>23</b> and <b>33</b> each having a diode configuration shown in a conventional art (in FIG. 10) are arranged in the configuration described in the first embodiment (FIG. 1). The third embodiment can be an example of an application (part 1) to the semiconductor device, shown in FIGS. 7A and 7B, which is applied by the applicant in advance.
[0086] In FIG. 5A, the surge protection circuit <b>23</b> is constituted by a series circuit of two diodes D1 and D2, and the forward terminal of the series circuit is connected to a power supply (Vdd1), and the backward terminal of the series circuit is connected to the ground (GND). The connection terminal of the two diodes D1 and D2 is connected to the connection line between a drain electrode D and an electrode pad <b>3</b> of a PMOS transistor <b>1</b>.
[0087] In FIG. 5B, the surge protection circuit <b>33</b> is constituted by two diodes D3 and D4, the forward terminal of the series circuit is connected to a power supply (Vdd1), and the backward terminal of the series circuit is connected to the ground (GND). The connection terminal of the two diodes D3 and D4 is connected to the connection line between a drain electrode D and an electrode pad <b>12</b> of an NMOS transistor <b>11</b>.
[0088] With this configuration, when disturbance such as a surge voltage is applied to the electrode pads <b>3</b> and <b>12</b>, the diodes D1 and D3 perform ON operations, a surge current flows into a power supply (Vdd1) <b>2</b> through the diodes D1 and D3. For this reason, loads on the PMOS transistor <b>1</b> and the NMOS transistor <b>11</b> are reduced, thus a tolerance can be increased.
[0089] Therefore, according to the third embodiment, as in the first embodiment, surge breakdown and electrostatic breakdown can be prevented in an OFF state, and latch-up breakdown can be prevented in an ON state. In addition, since the surge protection circuits are arranged, the tolerance of the MOS transistor to be protected can be increased in an OFF state.
[0090] A fourth embodiment of this invention will be explained below. FIGS. 6A and 6B are diagrams which show configurations of an electrostatic breakdown prevention circuit for a semiconductor device according to the fourth embodiment. FIG. 6A shows an example of a configuration of an electrostatic breakdown prevention circuit for a PMOS transistor of the MOS transistors constituting a CMOS integrated circuit which is a semiconductor device. FIG. 6B is an example of a configuration of an electrostatic breakdown prevention circuit for an NMOS transistor of the MOS transistors constituting a CMOS integrated circuit which is a semiconductor device. A CMOS inverter corresponding to the CMOS inverter shown in FIG. 1C is omitted in FIGS. 6A and 6B.
[0091] The same reference numerals as in the second embodiment (FIG. 4) denote the same parts or similar parts in FIGS. 6A and 6B. Parts related to the fourth embodiment will be mainly described here.
[0092] As shown in FIGS. 6A and 6B, in the fourth embodiment, surge protection circuits <b>23</b> and <b>33</b> each having a diode configuration shown in a conventional art (in FIG. 10) are arranged in the configuration described in the second embodiment (FIG. 4). The fourth embodiment can be an example of an application (part 2) to the semiconductor device, shown in FIGS. 7A and 7B, which is applied by the applicant in advance.
[0093] The connection relationship between the surge protection circuits <b>23</b> and <b>33</b> is the same as that described in the third embodiment (FIG. 5). Since the operation is described in the third embodiment (FIG. 5), the operation is not described again.
[0094] Therefore, according to the fourth embodiment, as in the second embodiment, surge breakdown and electrostatic breakdown can be prevented in an OFF state, and latch-up breakdown can be prevented in an ON state. In addition, since the surge protection circuits are arranged, the tolerance of the MOS transistor to be protected can be increased in an OFF state.
[0095] As a resistor serving as an impedance applying unit described in each of the embodiments, for example, a resistor formed by a semiconductor layer or a resistor component of a wire which leads the back gate to the ground or the power supply can be used.
[0096] As has been described above, according to one aspect of the present invention, in a MOS transistor constituting a CMOS integrated circuit, a certain level of impedance is applied to the back gate by the impedance applying unit. In an OFF state, the back gate is maintained in a state of impedance at the certain level. After the power supply is turned on, the impedance applied to each of the MOS transistors by the impedance applying unit is changed into an impedance lower than the impedance by the switch driven by the power supply of the CMOS integrated circuit. Therefore, surge breakdown and electrostatic breakdown can be prevented in an OFF state, and latch-up breakdown can be prevented in an ON state.
[0097] According to another aspect of the present invention, in a MOS transistor constituting a CMOS integrated circuit, an impedance is applied to the back gate by the impedance applying unit. After the power supply is turned on, the impedance applied to each of the MOS transistors by the impedance applying unit is switched to an impedance lower than the impedance by the switch driven by the power supply of the MOS integrated circuit. On the other hand, in an OFF state, when the power supply potential of the CMOS integrated circuit is increased by disturbance, a switching operation to the,lower impedance of the switch is delayed by the delay unit by a predetermined time corresponding to an application time of the disturbance. More specifically, within the predetermined time corresponding to the application time of the disturbance, the back gate is maintained in a higher-impedance state in which a higher impedance is applied by the impedance applying unit. Therefore, even though the same power supply as that of the MOS transistor to be protected is used as the power supply which drives the switch, surge breakdown and electrostatic breakdown can be prevented in an OFF state, and latch-up breakdown can be prevented in an ON state.
[0098] Although the invention has been described with respect to a specific embodiment for a complete and clear disclosure, the appended claims are not to be thus limited but are to be construed as embodying all modifications and alternative constructions that may occur to one skilled in the art which fairly fall within the basic teaching herein set forth.
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9 sheets
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| WO2017028348A1 | Cited by | World Intellectual Property Organization (WIPO) | International search |
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| 2002110485 | Japan | A | |
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| JP20020110485 | – | – | – |
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| US2003193765A1 | United States of America | A1 | |
| JP2003303899A | Japan | A | |
| US6847512B2 | United States of America | B2 | |
| US2005094334A1 | United States of America | A1 | |
| US6980409B2 | United States of America | B2 | |
| JP4199476B2 | Japan | B2 |
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Numbers
- Publication, DOCDB
- 2003193765
- Publication, EPODOC
- US2003193765
- Application
- 10267876
- Application, DOCDB
- 26787602
- Application, EPODOC
- US20020267876
Titles
- English
- Electrostatic breakdown prevention circuit for semiconductor device
Classification
- CPC, 2
- H01L27/0266
- H01L27/0255
- IPC, 8
- H01L27 04
- H01L21 822
- H01L21 8238
- H01L27 02
- H01L27 06
- H01L27 092
- H02H3 22
- H02H9 00
- USPC, 1
- 361056000