Claims
- 1. An EL display comprising:
- an EL display panel having a plurality of scan electrodes on a first side of an EL light-emitting layer, a plurality of data electrodes on a second side thereof, and EL elements in positions where the scan electrodes and the data electrodes intersect each other;
- a scan electrode driving circuit for sequentially applying a scan signal having different polarities in each of positive and negative fields to the plurality of scan electrodes; and
- a data electrode driving circuit for applying a data signal to the plurality of data electrodes;
- wherein the scan signal and the data signal cause the plurality of EL elements to selectively emit light;
- the scan electrode driving circuit is for applying the scan signal to the scan electrodes by supplying charge and discharge currents to the scan electrodes to charge and discharge the EL elements;
- the scan electrode driving circuit includes constant current control circuits for controlling the charge and discharge currents to apply constant currents to the scan electrodes; and
- wherein the constant current control circuits are positioned separate from the scan electrode driving circuit whereby heat generated by the constant current control circuits is not readily conducted to the scan electrode driving circuit.
- 2. An EL display according to claim 1, wherein:
- the scan electrode driving circuit includes switching elements at an output stage to supply the charge and discharge currents to the scan electrodes; and
- the constant current control circuits include switching elements in a path of the charge and discharge currents to perform the constant current control.
- 3. An EL display comprising:
- An EL display panel having a plurality of scan electrodes on a first side of an EL light-emitting layer, a plurality of data electrodes on a second side thereof, and EL elements in positions where the scan electrodes and the data electrodes intersect each other;
- a scan electrode driving circuit for sequentially applying a scan signal having different polarities in each of positive and negative fields to the plurality of scan electrodes; and
- a data electrode driving circuit for applying a data signal to the plurality of data electrodes;
- wherein the scan signal and the data signal cause the plurality of EL elements to selectively emit light, the scan electrode driving circuit is for applying the scan signal to the scan electrodes by supplying charge and discharge currents to the scan electrodes to charge and discharge the EL elements, the scan electrode driving circuit includes constant current control circuits for controlling the charge and discharge currents to apply constant currents to the scan electrodes;
- wherein the scan electrode driving circuit includes switching elements at an output stage to supply the charge and discharge currents to the scan electrodes, the constant current control circuits include switching elements in a path of the charge and discharge currents to perform the constant current control, and the switching elements included in the constant current control circuits are FETs; and
- wherein the constant current control circuits are for controlling a voltage between gates and sources of the FETs to perform constant current control.
- 4. An EL display according to claim 3, wherein the constant current control circuits include setting means for setting a gate voltage of respective FETs at a voltage for performing the constant current control.
- 5. An EL display according to claim 3, wherein the constant current control circuits include resistors for current detection connected at the sources of respective FETs to perform the constant current control.
- 6. An EL display according to claim 3, wherein the constant current control circuits include:
- a first constant current control circuit for controlling the charge and discharge currents at constant currents in a positive field; and
- a second constant current control circuit for controlling the charge and discharge currents at constant currents in a negative field.
- 7. An EL display according to claim 6, wherein:
- the first constant current control circuit is connected to a first end of a voltage source;
- the second constant current control circuit is connected to a second end of the voltage source;
- the scan electrode driving circuit is for applying a scan signal having a positive polarity using a voltage from the voltage source to the scan electrodes when the first constant current control circuit performs the constant current control with the second constant current control circuit in a non-operating state; and
- the scan electrode driving circuit is for applying a scan signal having a negative polarity using a voltage from the voltage source to the scan electrodes when the second constant current control circuit performs the constant current control with the first constant current control circuit in a non-operating state.
- 8. An EL display according to claim 3, wherein the constant current control circuits include:
- a first constant current control circuit for controlling a charge current supplied to the scan electrodes at a constant current in a positive field;
- a second constant current control circuit for controlling a discharge current from the scan electrodes at a constant current in the positive field;
- a third constant current control circuit for controlling a charge current supplied to the scan electrodes at a constant current in the negative field; and
- a fourth constant current control circuit for controlling a discharge current from the scan electrodes at a constant current in the negative field.
- 9. An EL display according to claim 8, wherein:
- the first and fourth constant current control circuits are connected to a first end of the voltage source;
- the second and third constant current control circuits are connected to a second end of the voltage source;
- the scan electrode driving circuit is for forming a charging path for applying a scan signal having a positive polarity utilizing a voltage from the voltage source to the scan electrodes when the first constant current control circuit performs the constant current control with the second, third, and fourth constant current control circuits in a non-operating state;
- the scan electrode driving circuit is for forming a discharging path from the scan electrodes which have been charged to the scan signal having a positive polarity when the second constant current control circuit performs the constant current control with the first, third, and fourth constant current control circuits in a non-operating state;
- the scan electrode driving circuit is for forming a charging path for applying a scan signal having a negative polarity using a voltage from the voltage source to the scan electrodes when the third constant current control circuit performs the constant current control with the first, second, and fourth constant current control circuits in a non-operating state; and
- the scan electrode driving circuit is for forming a discharging path from the scan electrodes which have been charged to the scan signal having a negative polarity when the fourth constant current control circuit performs the constant current control with the first, second, and third constant current control circuits in a non-operating state.
- 10. An EL display according to claim 3, further comprising a precharging circuit for performing precharging of the EL elements only when the positive and negative fields are inverted.
- 11. An EL display according to claim 10, wherein the precharging circuit includes:
- a first precharging circuit for performing the precharging at a time of inversion from the positive field to the negative field; and
- a second precharging circuit for performing the precharging at a time of inversion from the negative field to the positive field.
- 12. An EL display according to claim 11, wherein:
- said data electrode driving circuit is for generating said data signal to have a modulation voltage determining electro-luminescence of said plurality of EL elements; and
- said scan electrode driving circuit is for generating said scan signal to include a scan voltage component and a first offset voltage component, each of which is positive in a positive display field, said first offset voltage being equal in magnitude to said modulation voltage.
- 13. An EL display according to claim 3, wherein:
- said data electrode driving circuit is for generating said data signal to have a modulation voltage determining electroluminescence of said plurality of EL elements; and
- said scan electrode driving circuit is for generating said scan signal to include a scan voltage component and a first offset voltage component, each of which is positive in a positive display field, said first offset voltage being equal in magnitude to said modulation voltage.
- 14. An EL display according to claim 13, further comprising a precharging circuit for performing precharging of the EL elements when the positive and negative fields are inverted.
- 15. An EL display according to claim 14, wherein the precharging circuit includes a first precharging circuit for performing the precharging at a time of inversion from the positive field to the negative field, and a second precharging circuit for performing the precharging at a time of inversion from the negative field to the positive field.
- 16. An EL display according to claim 15, wherein the precharging voltage is equal in magnitude to the first offset voltage.
- 17. An EL display according to claim 3, wherein said constant current control circuits are disposed serially with respect to said data electrode driving circuits.
- 18. An EL display comprising:
- an EL display panel formed with a plurality of scan electrodes on a first side of an EL light-emitting layer, a plurality of data electrodes on a second side thereof, and EL elements in positions where the scan electrodes and the data electrodes intersect one another;
- an offset voltage applying circuit for simultaneously applying to a scan electrode a first offset voltage in a positive field and a reference voltage different from said first offset voltage in a negative field;
- a selection voltage generating circuit, connected to the first offset voltage applying circuit, for generating a positive selection voltage sufficient to cause said EL elements to be luminescent by superposing said positive selection voltage on said first offset voltage in said positive field, and for generating a negative selection voltage having a polarity opposite that of the positive selection voltage, said negative selection voltage being insufficient to cause said EL elements to be electro-luminescent;
- a scan electrode driving circuit connected to the selection voltage generating circuit and the scan electrode driving circuit for, in a positive field, superposing said positive selection voltage on said first offset voltage and applying said superposed voltage to a selected scan electrode, and for, in a negative field, applying a superposition of said reference voltage and said negative selection voltage to said selected scan electrode;
- a data electrode driving circuit for, in a positive field, applying said first offset voltage to at least a part of the plurality of data electrodes and applying said reference voltage to a selected data electrode, and in a negative field, applying said reference voltage to a data electrode and applying to said selected data electrode a data voltage having sufficient difference in magnitude from said negative selection voltage to cause an EL element at an intersection of said selected scan electrode and said selected data electrode to be luminescent;
- a constant current circuit, connected to said offset voltage applying circuit and disposed in a current flow path thereof, for controlling current generated at a time of switching between said first offset voltage and said reference voltage.
Priority Claims (4)
Number |
Date |
Country |
Kind |
7-168882 |
Jul 1995 |
JPX |
|
7-206344 |
Aug 1995 |
JPX |
|
7-206345 |
Aug 1995 |
JPX |
|
8-117979 |
May 1996 |
JPX |
|
CROSS-REFERENCE TO RELATED APPLICATIONS
This application is a continuation-in-part of U.S. patent application Ser. No. 08/675,672 filed Jul. 3, 1996, now U.S. Pat. No. 5,847,516, incorporated herein by reference. This application also claims foreign priority from Japanese Patent Application No. Hei 8-117979 and is further related to Japanese Patent Application Nos. Hei 7-168822, 7-206344 and 7-206345, all four of which also are incorporated by reference.
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Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
675672 |
Jul 1996 |
|