IP Library Granted Patent US 10,483,089
Granted Patent B2
US 10,483,089 · App. 16/250,765 · Granted Nov 19, 2019

High voltage resistive output stage circuit

Inventors: Timothy M. Ziemba (Bainbridge Island, WA); Kenneth E. Miller (Seattle, WA); James R. Prager (Seattle, WA); John G. Carscadden (Seattle, WA); Ilia Slobodov (Seattle, WA)
Assignee: Eagle Harbor Technologies, Inc.
H01J37/32174H01J37/32091H01J37/32146H01J37/32348H03K3/021H03K3/53H03K3/57H01J2237/2485
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Quick Facts
Patent No.
US 10,483,089
App. No.
16/250,765
Granted
Nov 19, 2019
Kind
B2
Abstract

Some embodiments include a high voltage, high frequency switching circuit. The switching circuit may include a high voltage switching power supply that produces pulses having a voltage greater than 1 kV and with frequencies greater than 10 kHz and an output. The switching circuit may also include a resistive output stage electrically coupled in parallel with the output and between the output stage and the high voltage switching power supply, the resistive output stage comprising at least one resistor that discharges a load coupled with the output. In some embodiments, the resistive output stage may be configured to discharge over about 1 kilowatt of average power during each pulse cycle. In some embodiments, the output can produce a high voltage pulse having a voltage greater than 1 kV and with frequencies greater than 10 kHz with a pulse fall time less than about 400 ns.

Claims (35)

1. A high voltage, high frequency switching circuit comprising:

a high voltage switching power supply that produces pulses having a voltage greater than 1 kV and with frequencies greater than 10 kHz;

an output; and

a resistive output stage electrically coupled to, and in parallel with the output of the high voltage switching power supply, the resistive output stage comprising at least one resistor that discharges a load coupled with the output, the resistive output stage configured to dissipate over about 1 kilowatt of average power.

2. The high voltage, high frequency switching circuit according to claim 1 , wherein the high voltage switching power supply comprises a power supply, at least one switch, and a step-up transformer.

3. The high voltage, high frequency switching circuit according to claim 1 , wherein the output is coupled with a plasma load that is largely capacitive.

4. The high voltage, high frequency switching circuit according to claim 1 , wherein the output is coupled with a plasma load that includes a dielectric barrier discharge.

5. The high voltage, high frequency switching circuit according to claim 1 , wherein the resistance of the resistor in the resistive output stage has a value less than about 400 ohms.

6. The high voltage, high frequency switching circuit according to claim 1 , wherein the high voltage high frequency switching power supply delivers peak powers greater than 100 kW.

7. The high voltage, high frequency switching circuit according to claim 1 , wherein the resistor in the resistive output stage includes a resistance R and the output is coupled with a load having a capacitance C such that R≈C/t f where t f is the pulse fall time.

8. The high voltage, high frequency switching circuit according to claim 1 , wherein the load is capacitive in nature with a capacitance less than 50 nF, wherein the load capacitance does not hold charges for times greater than 10 μs.

9. The high voltage, high frequency switching circuit according to claim 1 , wherein the load is capacitive in nature and the high voltage, high frequency switching circuit rapidly charges the load capacitance and discharges the load capacitance.

10. The high voltage, high frequency switching circuit according to claim 1 , wherein the output produces a negative bias voltage within a plasma of greater than −2 kV when the high voltage switching power supply is not providing a high voltage pulse.

11. The high voltage, high frequency switching circuit according to claim 1 , wherein the output can produce a high voltage pulse having a voltage greater than 1 kV and with frequencies greater than 10 kHz with pulse fall times less than about 400 ns.

12. The high voltage, high frequency switching circuit according to claim 1 , wherein the resistive output stage comprises at least one inductor in series with the at least one resistor.

13. A high voltage, high frequency switching circuit comprising:

a high voltage switching power supply that produces pulses having a voltage greater than 1 kV and with frequencies greater than 10 kHz;

an output; and

a resistive output stage electrically coupled to, and in parallel with the output of the high voltage switching power supply, the resistive output stage comprising at least one resistor that discharges a load coupled with the output,

wherein the output can produce a high voltage pulse having a voltage greater than 1 kV and with frequencies greater than 10 kHz and with a pulse fall time less than about 400 ns.

14. The high voltage, high frequency switching circuit according to claim 13 , wherein the resistive output stage comprises at least one inductor in series with the at least one resistor.

15. The high voltage, high frequency switching circuit according to claim 13 , wherein the resistive output stage handles a peak power greater than 10 kW.

16. The high voltage, high frequency switching circuit according to claim 13 , wherein the resistance of the resistor in the resistive output stage is less than about 400 ohms.

17. The high voltage, high frequency switching circuit according to claim 13 , wherein the high voltage switching power supply establishes a potential within a plasma that is used to accelerate ions into a surface.

18. The high voltage, high frequency switching circuit according to claim 13 , wherein the output produces a negative bias voltage within a plasma of greater than −2 kV when the high voltage switching power supply is not providing a high voltage pulse.

19. A high voltage, high frequency switching circuit comprising:

a high voltage switching power supply that produces pulses having a voltage greater than 1 kV and with frequencies greater than 10 kHz;

an output; and

a resistive output stage electrically coupled to, and in parallel with the output of the high voltage switching power supply, the resistive output stage comprising at least one resistor,

wherein the output can produce a high voltage pulse having a voltage greater than 1 kV with frequencies greater than 10 kHz and with pulse fall times less than about 400 ns, and wherein the output is electrically coupled to a plasma type load.

20. The high voltage, high frequency switching circuit according to claim 19 , wherein the resistive output stage comprises at least one inductor in series with the at least one resistor.

21. The high voltage, high frequency switching circuit according to claim 19 , wherein the plasma type load can be modeled as having capacitive elements less than 20 nF in size.

22. The high voltage, high frequency switching circuit according to claim 19 , wherein the plasma type load is designed to accelerate ions in the plasma type load into a surface.

23. The high voltage, high frequency switching circuit according to claim 19 , wherein the high voltage high frequency switching power supply delivers peak powers greater than 100 kW.

24. The high voltage, high frequency switching circuit according to claim 19 , wherein the high voltage switching power supply comprises a power supply, at least one switch, and a step-up transformer.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 17, 2023
From: EAGLE HARBOR TECHNOLOGIES, INC.
To: EHT VENTURES LLC
Reel/Frame 065259/0258 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 17, 2019
From: ZIEMBA, TIMOTHY M.; CARSCADDEN, JOHN G.; PRAGER, JAMES R.; MILLER, KENNETH E.; SLOBODOV, ILIA
To: EAGLE HARBOR TECHNOLOGIES, INC.
Reel/Frame 048052/0935 →
Continuity (7)
Continuation In Part 16178538 · Nov 1, 2018
Continuation 15941731 · Mar 30, 2018
Continuation In Part 15623464 · Jun 15, 2017
Continuation 14635991 · Mar 2, 2015
Provisional Application 62480115 · Mar 31, 2017
Provisional Application 61946457 · Feb 28, 2014
Related Publication 20190157044A1 · May 23, 2019
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