Claims
- 1. In an excimer or molecular fluorine laser system, a method for controlling a time interval between a trigger pulse and a light pulse, the method comprising:
(a) generating a trigger pulse which initiates a process of generating a light pulse from the laser; (b) transmitting a first signal to a digital time measuring circuit when the trigger pulse is generated; (c) transmitting a second signal to the digital time measuring circuit at a time which corresponds to the generation of the light pulse; (d) operating the digital time measuring circuit to generate an interval signal which is a digital representation of the elapsed time between the receipt of the first and second signals; and (e) controlling a subsequent time interval between the generation of a subsequent trigger pulse and a subsequent light pulse based on at least the interval signal.
- 2. The method of claim 1, wherein the controlling includes transmitting the interval signal to a microprocessor, wherein the microprocessor determines an adjustment to a delay circuit based at least in part on the interval signal.
- 3. The method of claim 1 further comprising:
applying a high voltage to a discharge circuit; wherein the discharge circuit applies an electrical pulse across electrodes of a laser chamber in response to the discharge circuit receiving the trigger pulse; discharging the electrical pulse across electrodes of the laser chamber; sensing the discharge of the electrical pulse across the electrodes; and transmitting the second signal to the digital time measuring circuit when the discharge of the electrical pulse is sensed.
- 4. The method of claim 1 further comprising:
applying a high voltage to a discharge circuit; wherein the discharge circuit applies an electrical pulse across electrodes of a laser chamber in response to the discharge circuit receiving the trigger pulse; discharging the electrical pulse across electrodes of the laser chamber; and controlling an interval time between the generation of the trigger pulse and the discharge of the electrical pulse across the electrodes based on at least the value of the high voltage applied to the discharge circuit.
- 5. The method of claim 1 further comprising:
sensing when the light pulse is generated; and wherein the second signal is sent to the digital time measuring circuit when the light pulse is sensed.
- 6. The method of claim 1 wherein the controlling a subsequent interval includes referencing a look up table to determine an adjustment to a delay circuit based on the interval signal.
- 7. The method of claim 1 wherein the controlling a subsequent interval includes transmitting the interval signal to a microprocessor, and programming the microprocessor to determine an adjustment to a delay circuit based on the interval signal.
- 8. A delay control system for an excimer or molecular fluorine laser system for controlling a time interval between a trigger pulse and a light pulse, comprising:
a trigger pulse generator, which generates the trigger pulse; a discharge circuit which includes a switch which receives the trigger pulse, and in response to the switch receiving the trigger pulse the discharge circuit outputs an electrical pulse; a laser chamber including electrodes, wherein the electrodes receive the electrical pulse from the discharge circuit, and a light pulse is emitted in response the electrical pulse being discharged across the electrodes; and a digital time measuring circuit which receives a first signal which corresponds to when the trigger pulse is generated, and receives a second signal which corresponds to when the electrical pulse is discharged across the electrodes, and wherein the digital time measuring circuit generates an interval signal which corresponds to a time difference between the first signal and the second signal; and a processor which receives the interval signal and based at least in part on the interval signal controls a delay circuit to adjust a subsequent time interval between the generation of a subsequent trigger pulse and a subsequent discharge of an electrical pulse across the electrodes.
- 9. The delay control system of claim 8 further comprising:
a sensor positioned to sense when the electrical pulse is discharged across the electrodes, and wherein the sensor is coupled to the digital time control circuit to transmit the second signal to the digital time control circuit when the sensor senses the electrical pulse is discharged across the electrodes.
- 10. The delay control system of claim 8 further comprising:
a sensor positioned to sense when the light pulse is emitted in response the electrical pulse being discharged across the electrodes, and wherein the sensor is coupled to the digital time control circuit to transmit the second signal to the digital time control circuit when the sensor senses the light pulse.
- 11. The delay control system of claim 8 further comprising a look up table coupled to the processor, wherein the processor accesses data stored in the look up table to determine an adjustment to the delay circuit based at least in part on the interval signal.
- 12. The delay control system of claim 8 further comprising:
a high voltage charging circuit which applies a high voltage potential to the discharge circuit; and wherein the high voltage charging circuit is coupled to the processor such that the processor receives a signal which corresponds to the high voltage applied to the discharge circuit, and wherein the processor adjusts the delay circuit to control a time interval between a trigger pulse and a discharge of an electrical pulse across the electrodes.
- 13. The delay control system of claim 8 further comprising:
a high voltage charging circuit which applies a high voltage potential to the discharge circuit; and wherein the high voltage charging circuit is coupled to a second processor such that the second processor receives a signal which corresponds to the high voltage applied to the discharge circuit, and wherein the second processor adjusts a second delay circuit to control a time interval between a trigger pulse and a discharge of an electrical pulse across the electrodes.
- 14. An excimer or molecular fluorine laser system including a delay control for controlling a time interval between a trigger pulse and light pulse, the laser system including:
a high voltage power supply; a discharge circuit which includes a switch which receives the trigger pulse, and in response to the switch receiving the trigger pulse the discharge circuit outputs an electrical pulse, wherein the discharge circuit is coupled to the high voltage power supply such that the high voltage power supply applies a high voltage to the discharge circuit; a trigger pulse generator, which generates the trigger pulse, wherein trigger pulse generator is coupled to the switch; a laser chamber including electrodes, wherein the electrodes are coupled to the discharge circuit to receive the electrical pulse from the discharge circuit, and to discharge the electrical pulse across electrodes whereby a light pulse is emitted in response the electrical pulse being discharged across the electrodes; a first delay circuit coupled between the trigger pulse generator and the switch; and a digital time measuring circuit which receives a first signal which corresponds to when the trigger pulse is generated, and receives a second signal which corresponds to when the electrical pulse is discharged across the electrodes, and wherein the digital time measuring circuit generates an interval signal which corresponds to a time difference between the first signal and the second signal; a processor which receives the interval signal and based at least in part on the interval signal controls the delay circuit to adjust a subsequent time interval between the generation of a subsequent trigger pulse and a subsequent discharge of the electrical pulse across the electrodes.
- 15. The laser system of claim 14 further including:
a second delay circuit coupled between the trigger pulse generator and the switch; and the processor is coupled to the discharge circuit such that it receives a signal which corresponds to the high voltage applied to the discharge circuit, and wherein the processor is coupled to the second delay circuit, and operable to adjust the second delay circuit to control a time interval between a trigger pulse and a discharge of an electrical pulse across the electrodes, based at least in part on the signal which corresponds to the high voltage signal.
PRIORITY
[0001] This application claims the benefit of priority to U.S. provisional patent application No. 60/382,893 filed May 22, 2002.
Provisional Applications (1)
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Number |
Date |
Country |
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60382893 |
May 2002 |
US |