EP0261584A2

Method for controlling cells and pixels of plasma panels, plasma display panels, electroluminescent panels, lcd's or that like and a circuit for carrying out the method.

Abstract

An improved address driver circuit for plasma panels, particularly useful with an independent sustain and address plasma panel. Address pulse generators for one panel address axis are coupled to MOSFET driver devices and provide pulses of a first polarity; and address pulse generators for the other panel address axis are coupled to similar MOSFET driver devices and provide double puleses of a second polarity. With N-channel open-drain MOSFET drivers on both panel address axes, they only need to be designed to pull low. An improved power efficient sustain driver for plasma panels including an inductor through which the panel capacitance is charged and discharged, and switch means switched when the inductor current is zero, which permits recovery of the energy otherwise lost in driving the panel capacitance. An independent sustain and address plasma panel with such energy efficent address drivers and sustain drivers. The energy efficient sustain driver can be used with plasma display panels, electroluminescent panels and with liquid crystal panels having inherent panel capacitance. An independent sustain and address panel with N-channel MOSFET drivers on one address axis and P-channel MOSFET drivers on the other address axis, with an address pulse generator providing pulses of a first polarity to the N-channel MOSFETs, and another address pulse generator providing pulses of a second polarity to the P-channel MOSFETS.

EP0261584A2, drawing sheet 1
Sheet 1 of 10

Term

Term ended

Projected expiry passed 16 September 2007, 19 years ago.

  1. Priority
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  3. Published
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30 claims: 9 independent, 21 dependent

  1. 1
    A method for controlling (addressing and sustaining) cells and pixels of plasma panels, plasma display panels, electroluminescent panels, LCD's or that like having panel electrodes and corresponding panel capacitance in which the address cells and/or pixels are defined by the intersection of respective address electrodes in respective arrays of (X and Y dimension) address electrodes characterized by the steps of:bringing up the electrical potential of one address electrode (X) to a high level of one polarity;selecting whether to maintain (erase pixel) the high level of one polarity of said one address electrode (X) or to bring down (leave pixel on) the electrode to a low level of said one polarity in accordance with desired information to be entered into the cell or pixel of said panel/LCD;and applying a high level of opposite polarity (YAP) to an respective other address electrode (Y) of the other dimension array after a high level of said one polarity has been selected at said other address electrode (Y), for pulling down the electrical potential of said other address electrode (Y) and for entering the desired information (erase/leave-on pixel) into the panel/LCD.
  2. 2
    Method according to Claim 1, characterized by bringing the electrical potential of said one address electrode (X) to a high level of said one polarity by applying a high level pulse (P1) of said one polarity to said one address electrode (X).
  3. 3
    Method according to Claim 2, characterized in that the high level pulse (P1) starts and terminates before the high level of opposite polarity is applyed to said other address electrode (Y).
  4. 4
    Method according to one of Claims 2 or 3, characterized by applying a second pulse (P2) of said one polarity to said one address electrode (X) and bringing down the electrical potential of said one address electrode to said low level of said one polarity with the end of said second pulse (P2) for controllably discharging said one address electrode (X).
  5. 5
    Method according to Claim 4, characterized in that said second pulse (P2) starts and terminates after bringing back said other address electrode (Y) to said high level of said one polarity.
  6. 6
    Method according to Claim 5, characterized in that said high level pulses (P1, P2) and said high level of opposite polarity (YAP), respectively, are (in general) applyed simultaneously to all of the address electrodes of respective arrays of address electrodes (X, Y).
  7. 7
    Method according to one of the preceding Claims characterized in that at least two different amplitude levels of said opposite polarity (YAP) are provided, one (higher) amplitude level (firing voltage) for writing information into the cell/pixel and the other (lower) amplitude level for erasing information from the cell/pixel.
  8. 8
    Method according to one of the preceding Claims characterized in that the amplitude and shape of voltages applyed to the respective arrays of address electrodes (X, Y) are defined by two generator means (XAP, YAP) and that said two generator means are connected to or separated from said address electrodes (X, Y) in accordance with the desired information to be entered into the cells or pixels.
  9. 9
    Method according to one of the preceding Claims characterized by controlling Independent Sustain and Address (ISA) ac plasma panels having a plurality of X and Y dimension address electrodes, intersections between said address electrodes defining address cells, a plurality of X and/or Y dimension sustain electrodes;each said X and/or Y address electrode positioned between and adjacent to two sustain electrodes of identical dimension (X or Y, respectively).
  10. 10
    Method according to Claim 9 characterized by that the pixels corresponding to one address cell are (first) written simultaneously and (secondly) erased selectively in accordance with the information to be entered.
  11. 11
    Method according to Claim 10 characterized in staggering of the write and erase operation of one address cell by at least one erase cycle of a further address cell.
  12. 12
    A method for controlling (adressing and sustaining) cells and pixels of plasma panels, plasma display panels, electroluminescent panels, LCD's or that like having panel electrodes and corresponding panel capacitance in which the address cells and/or pixels are defined by the intersection of respective address electrodes in respective arrays of (X and Y dimension) address electrodes characterized by comprising the steps of:charging the panel capacitance through an inductor, initially while storing energy in said inductor until the magnitude of the inductor current reaches a maximum, and secondly while removing the stored energy from said inductor until the inductor current reaches zero;and discharging the panel capacitance through said inductor, initially while storing energy in said inductor until the magnitude of the inductor current reaches a maximum, and secondly while removing the stored energy from said inductor until the inductor current reaches after zero.
  13. 13
    Method according to Claim 12 characterized by charging and/or discharging of the panel capacitance includes applying a forcing voltage which is about one-half the magnitude of the voltage level the panel capacitance reaches after charging.
  14. 14
    Method according to one of Claims 12 or 13 characterized by including the steps of after charging/­discharging the panel capacitance, maintaining the panel capacitance in a charged/discharged state prior to discharge/again charging the panel capacitance.
  15. 15
    Method according to Claim 14 characterized by the step of maintaining the panel capacitance in a charged state includes clamping the voltage level of the panel capacitance upon the inductor current reaching zero, and wherein the step of maintaining the panel capacitance in a discharged state prior to again charging includes clamping the voltage level of the panel capacitance upon the inductor current reaching zero.
  16. 16
    Circuit for controlling (addressing and sustaining) cells and pixels of plasma panels, plasma display panels, electroluminescent panels, LCD's or that like having panel electrodes and corresponding panel capacitance in which the address cells and/or pixels are defined by the intersection of respective address electrodes in respective arrays of (X and Y dimension) address electrodes characterized by means for bringing up the electrical potential of an address electrode of one dimension array to a high level of one polarity;means for selecting whether to maintain the high level of one polarity at said address electrode or to bring the electrode to a low level of said one polarity in accordance with desired information to be entered into the panel;and means for applying a high level of opposite polarity to a respective address electrode of the other dimension array after a high level of one polarity has been selected at said address electrode of said one dimension array, for bringing down the electrical potential of the defined address cell and entering the desired information in the plasma panel.
  17. 17
    Circuit according to Claim 16 characterized by that said means for bringing up and down the electrical potential of the address electrode of one dimension array includes means for applying a high level pulse of said one and of said opposite polarity, respectively, to said address electrode.
  18. 18
    Circuit according to one of Claims 16 or 17 characterized in means for applying a (second) high level pulse of said one polarity to said address electrode of said one dimension array after entering said desired information or after the end of said high level pulse of opposite polarity for enabling the controllable bringing down of the electrical potential of said address electrode from said high level to said low level of said one polarity.
  19. 19
    Circuit according to one of Claims 16 to 18 characterized in that said means for bringing up and/or down the potential of at least one of said address electrode (X, Y) comprise (pulse-) generator means (XAP, YAP) controllable connected with an output thereof via switching devices to each of said address electrodes.
  20. 20
    Circuit according to Claim 19 characterized in that each of said switching devices is an identical semiconductor device, preferably a MOSFET device, most preferably an open-drain, n-channel device.
  21. 21
    Circuit according to one of Claims 19 or 20 characterized in that one of said (pulse-) generator means (YAP) provides pulses of at least two different amplitude levels, one amplitude level for writing information into the panel and the other amplitude level for erasing information from the panel.
  22. 22
    Circuit for controlling (addressing and sustaining) cells and pixels of plasma panels, plasma display panels, electroluminescent panels, LCD's or that like having panel electrodes and corresponding panel capacitance in which the address cells and/or pixels are defined by the intersection of respective address electrodes in respective arrays of (X and Y dimension) address electrodes characterized by an inductor (L) coupled to the panel electrodes, and a driver circuit coupled to the inductor (2) for operating the display panel through the inductor (2), the driver circuit including, means for charging the panel capacitance through said inductor, initially while storing energy in said inductor until the magnitude of the inductor current reaches a maximum, and secondly while removing the stored energy from said inductor until the inductor current reaches zero;and means for discharging the panel capacitance through said inductor, initially while storing energy in said inductor until the magnitude of the inductor current reaches a maximum, and secondly while removing the stored energy from said inductor until the inductor current reaches zero.
  23. 23
    Circuit according to Claim 22 characterized by comprising first means for clamping the voltage level of the panel capacitance upon the inductor current reaching zero during charging of the panel capacitance;second means for clamping the voltage level to the panel capacitance upon the inductor current reaching zero during discharge of the panel capacitance.
  24. 24
    Circuit according to Claim 23 characterized by first and second means for clamping includes means responsive to the inductor current reaching zero to provide said clamping independent of variations in the values of said inductor or said panel capacitance.
  25. 25
    Circuit according to one of Claims 22 to 24 characterized by first switch means coupled to said inductor to enable said panel capacitance to charge through said inductor from a first voltage level (a) initially to an intermediate voltage level magnitude which is about one-half the desired voltage level magnitude, while storing energy in said inductor, and (b) then to said desired voltage level magnitude, while removing said stored energy from said inductor;and second switch means coupled to said inductor to enable said panel capacitance to discharge through said inductor from said desired voltage level magnitude (a) initially to an intermediate voltage level magnitude which is about one-half the desired voltage level magnitude, while storing energy in said inductor, and (b) then to said first voltage level magnitude, while removing said stored energy from said inductor.
  26. 26
    Circuit according to one of Claims 22 to 25 characterized in that said means for charging/discharging the panel capacitance includes means for applying a forcing voltage which is about one-half the magnitude of the voltage level the panel capacitance reaches after charging.
  27. 27
    Circuit according to one of Claims 22 to 26 characterized by including (switch) means for maintaining the panel capacitance in a charged state after charging the panel capacitance in prior to discharge, and/or (switch) means for maintaining the panel capacitance in a discharged state after discharge or upon the inductor current reaching zero and prior to again charging the panel capacitance.
  28. 28
    Circuit according to Claim 27 characterized in that said means for maintaining the panel capacitance in a charged state includes means for charging the voltage level of the panel capacitance upon the inductor current reaching zero during charging of the panel capacitance, and wherein said means for maintaining the panel capacitance in a discharged state includes means for clamping the voltage level of the panel capacitance upon the inductor current reaching zero during discharging of the panel capacitance.
  29. 29
    An ac plasma panel or a display panel comprising:an array of X dimension electrodes;an intersecting array of Y dimension electrodes with the intersections between respective X and Y electrodes defining a gas discharge cell or respective display pixles;control means for applying a signal to selected X and Y electrodes to discharge at least one gas discharge cell or display pixel characterized in that said control means comprise a circuit according to one or more of Claims 16 to 28.
  30. 30
    An independent sustain and address ac plasma panel comprising:a plurality of X and Y dimension address electrodes, intersections between said address electrodes defining address cells;a plurality of Y dimension sustain electrodes;each said Y address electrode positioned between and adjacent to at least two sustain electrodes;address means for applying an addressing signal during an addressing cycle to selected X and Y address electrodes to discharge at least one address cell, the plasma created by said discharge depositing residual wall charges at discharge sites associated with said two sustain electrodes in dependence upon the voltage existing at said discharge sites;sustain means for subsequently energizing said sustain electrodes which energization in combination with said residual wall voltages selectively affects to discharge state of one or more said discharge sites;characterized in that said address and/or sustain means comprise a circuit according to one ore more of Claims 16 to 28.
Independent claims30