IP Library › Granted Patent US 12,341,478
Granted Patent B2
US 12,341,478 · App. 17/965,792 · Granted Jun 24, 2025

Impedance matching circuit and plasma supply system and operating method

Inventor: Birger Nordmann (Alfter, DE)
Assignee: TRUMPF Huettinger GmbH + Co. KG
H03F3/19H01J37/32183H03H11/28H01J2237/332H01J2237/334H05H2242/26
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Quick Facts
Patent No.
US 12,341,478
App. No.
17/965,792
Granted
Jun 24, 2025
Kind
B2
Abstract

An impedance matching circuit includes a radiofrequency terminal and a series circuit connected to the radiofrequency terminal, wherein the series circuit comprises at least one reactance and at least one switching element having a drive input. A drive circuit is connected to the drive input and a coupler is connected to the drive circuit so as to an enable signal input. The impedance matching circuit enables short switching times and low losses in the at least one switching element.

Claims (41)

1. An impedance matching circuit-comprising:

a radiofrequency terminal;

a series circuit connected to the radiofrequency terminal, wherein the series circuit comprises at least one reactance and at least one switching element having a drive input;

a drive circuit connected to the drive input; and

a coupler connected to the drive circuit so as to enable a signal input,

wherein the coupler is configured to bypass a high voltage with respect to ground greater than an RF voltage occurring in the impedance matching circuit, or

wherein the coupler is configured to decouple a radiofrequency applied to the impedance matching circuit during operation at the radiofrequency terminal.

2. The impedance matching circuit as claimed in claim 1 , wherein the coupler comprises an optocoupler, a magnetic coupler, an electromechanical coupler or an electrical coupler.

3. An impedance matching circuit comprising:

a radiofrequency terminal:

a series circuit connected to the radiofrequency terminal, wherein the series circuit comprises at least one reactance and at least one switching element having a drive input:

a drive circuit connected to the drive input; and

a coupler connected to the drive circuit so as to enable signal input,

wherein the impedance matching circuit is configured, when there is a voltage applied at the radiofrequency terminal, to switch the at least one switching element on and off.

4. The impedance matching circuit as claimed in claim 1 , wherein the drive circuit and the coupler are integrated in a single unit.

5. The impedance matching circuit as claimed in claim 1 , wherein the coupler is constructed from discrete components.

6. The impedance matching circuit as claimed in claim 1 , wherein the coupler is in the form of an integrated circuit.

7. The impedance matching circuit as claimed in claim 1 , wherein the drive circuit is constructed from discrete components.

8. The impedance matching circuit as claimed in claim 1 , wherein the drive circuit is in the form of an integrated circuit.

9. The impedance matching circuit as claimed in claim 1 , wherein the series circuit comprises two transistors connected back-to-back in parallel, and wherein the two transistors are connected at source terminals thereof and are at a common source potential.

10. The impedance matching circuit as claimed in claim 1 , wherein the drive circuit is connected to a supply voltage via at least one inductor.

11. The impedance matching circuit as claimed in claim 9 , wherein the drive circuit is connected to the source potential.

12. The impedance matching circuit as claimed in claim 1 , further comprising a referencing circuit, wherein the drive circuit is connected to a terminal point of the series circuit via the referencing circuit.

13. The impedance matching circuit as claimed in claim 12 , wherein the terminal point is connected directly to the referencing circuit.

14. An impedance matching circuit comprising:

a radiofrequency terminal;

a series circuit connected to the radiofrequency terminal, wherein the series circuit comprises at least one reactance and at least one switching element having a drive input;

a drive circuit connected to the drive input;

a coupler connected to the drive circuit so as to enable signal input; and

a referencing circuit, wherein the drive circuit is connected to a terminal point of the series circuit via the referencing circuit,

wherein the referencing circuit has a voltage divider, or

wherein the referencing circuit has at least one internal DC voltage source each having one capacitor.

15. The impedance matching circuit as claimed in claim 14 , wherein the at least on internal DC voltage includes two internal DC voltage sources connected in series and having the same voltage.

16. The impedance matching circuit as claimed in claim 15 , wherein a common node between the two series-connected internal DC voltage sources is connected to the source potential.

17. The impedance matching circuit as claimed in claim 12 , wherein the referencing circuit is connected to a supply voltage via at least one inductor.

18. The impedance matching circuit as claimed in claim 1 , wherein the series circuit has a switching transistor having a source potential connected to ground.

19. The impedance matching circuit as claimed in claim 1 , wherein the at least one switching element includes at least two switching elements connected in parallel.

20. The impedance matching circuit as claimed in claim 1 , further comprising a further series circuit connected in parallel to the series circuit, the further series circuit having a further drive circuit connected thereto.

21. The impedance matching circuit as claimed in claim 20 , wherein capacitances provided in the series circuits have different values.

22. A plasma supply system comprising a radiofrequency power generator, a load in the form of a plasma process operated at radiofrequency for coating or etching a substrate, and an impedance matching circuit as claimed in claim 1 .

23. A plasma supply system comprising a radiofrequency power generator, a load in the form of a plasma process operated at RF for coating or etching a substrate, and an impedance matching arrangement, which has a plurality of impedance matching circuits as claimed in claim 1 .

Priority Claims (1)
DE 202020102084.6 · Apr 15, 2020 · national
Continuity (2)
Continuation PCTEP2021059449 · Apr 12, 2021
Related Publication 20230043171A1 · Feb 9, 2023
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