IP Library Granted Patent US 10,923,321
Granted Patent B2
US 10,923,321 · App. 16/790,086 · Granted Feb 16, 2021

Apparatus and method of generating a pulsed waveform

Inventors: Leonid Dorf (San Jose, CA); Evgeny Kamenetskiy (Santa Clara, CA); James Rogers (Los Gatos, CA); Olivier Luere (Sunnyvale, CA); Rajinder Dhindsa (Pleasanton, CA); Viacheslav Plotnikov (Santa Clara, CA)
Assignee: Applied Materials, Inc.
H01J37/32128H01J37/32082H01J37/3299H01J37/32146H01J37/32165H01J37/32174H01L21/31116H05H1/2406H01J2237/3341H01L21/6831
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Quick Facts
Patent No.
US 10,923,321
App. No.
16/790,086
Granted
Feb 16, 2021
Kind
B2
Abstract

Embodiments of this disclosure describe a feedback loop that can be used to maintain a nearly constant sheath voltage and thus creating a mono-energetic IEDF at the surface of the substrate. The system described herein consequently enables a precise control over the shape of IEDF and the profile of the features formed in the surface of the substrate.

Claims (53)

1. A method of controlling a pulsed voltage waveform, comprising:

(a) generating, by a first input channel, a first conditioned voltage waveform from a first input voltage waveform, wherein

the first input voltage waveform is received by the first input channel that is electrically coupled to a transmission line that electrically connects a pulsed voltage waveform generator to a biasing electrode disposed within a plasma processing chamber,

the received first input voltage waveform is based on a pulsed voltage waveform generated by the pulsed voltage waveform generator, and

the first input channel has a first end that is coupled to a fast data acquisition module and a second end that is coupled to the transmission line;

(b) generating, by the fast data acquisition module, a first digitized voltage waveform from the first conditioned voltage waveform;

(c) determining one or more waveform characteristics of the first conditioned voltage waveform by analyzing the generated first digitized voltage waveform;

(d) generating one or more control parameters based on the determined one or more waveform characteristics; and

(e) transmitting the one or more control parameters to the pulsed voltage waveform generator, wherein the pulsed voltage waveform generator is configured to adjust one or more waveform characteristics of a plurality of pulsed voltage waveforms subsequently generated by the pulsed voltage waveform generator due at least in part to the receipt of the transmitted one or more control parameters.

2. The method of claim 1 , wherein the determined one or more waveform characteristics are selected from a group consisting of a pulse amplitude, a pulse voltage offset, a period of one-cycle of a pulse, a rise time of a pulse, a fall time of a pulse and a pulse repetition frequency.

3. The method of claim 1 , wherein determining the one or more waveform characteristics of the first conditioned voltage waveform further comprises comparing attributes of the digitized voltage waveform with information stored within a memory.

4. The method of claim 3 , wherein the information stored within the memory of the fast data acquisition module comprises target voltage waveform characteristics that are selected from a group consisting of a pulse amplitude, a pulse voltage offset, a period of one-cycle of a pulse, a rise time of a pulse, a fall time of a pulse and a pulse repetition frequency.

5. The method of claim 1 , wherein the first input channel comprises a voltage divider, and the generated first conditioned voltage waveform comprises a divided waveform generated by use of the voltage divider.

6. The method of claim 5 , wherein the voltage divider comprises a first voltage divider cascade and a second voltage divider cascade, wherein the first voltage divider cascade has a dividing ratio in a range of about 10 to 1 to about 100 to 1, and the second voltage divider cascade has a dividing ratio in a range of about 20 to 1 to about 120 to 1.

7. The method of claim 5 , wherein the first input channel further comprises a low pass filter, and the generated first conditioned voltage waveform further comprises a filtered waveform that is formed by filtering the divided waveform by use of the low pass filter.

8. The method of claim 1 , wherein the first input channel further comprises a low pass filter that has a frequency response curve comprising a plateau and a cut-off frequency, wherein the plateau is between 1 MHz and about 7 MHz, and the cut-off frequency is in a range of about 5 MHz to about 10 MHz.

9. The method of claim 1 , wherein the biasing electrode is disposed within a substrate support assembly disposed within the plasma processing chamber.

10. The method of claim 1 , wherein the transmission line comprises a blocking capacitor that is electrically coupled between the pulsed voltage waveform generator and the biasing electrode, and the second end of the first input channel is coupled to a position on the transmission line between the blocking capacitor and the biasing electrode.

11. The method of claim 1 , wherein the transmission line comprises a blocking capacitor that is electrically coupled between the pulsed voltage waveform generator and the biasing electrode, and the second end of the first input channel is coupled to a position on the transmission line between the blocking capacitor and the pulsed voltage waveform generator.

12. The method of claim 1 , wherein the second end of the first input channel is coupled to an output of a current sensor that is positioned to measure a current flowing within the transmission line.

13. The method of claim 1 , further comprises repeating (a)-(e) a plurality of times until the determined one or more waveform characteristics of the first conditioned voltage waveform have reached:

a target waveform characteristic value or limit;

a maximum offset voltage;

a maximum pulse power limit;

a maximum pulse width; or

a minimum pulse width.

14. A method of controlling a pulsed voltage waveform, comprising:

(a) generating, by a first input channel, a first conditioned voltage waveform from a first input voltage waveform, wherein

the first input voltage waveform is received by the first input channel that is electrically coupled to a first position on a transmission line that electrically connects a pulsed voltage waveform generator to a biasing electrode disposed within a plasma processing chamber,

the received first input voltage waveform is based on a pulsed voltage waveform generated by the pulsed voltage waveform generator, and

the first input channel that has a first end that is coupled to a fast data acquisition module and a second end that is coupled to the first position of the transmission line;

(b) generating, by the fast data acquisition module, a first digitized voltage waveform from the first conditioned voltage waveform;

(c) generating, by a second input channel, a second conditioned voltage waveform from a second input voltage waveform, wherein

the second input voltage waveform is received by the second input channel that is electrically coupled to a second position on the transmission line, and

the second input channel that has a first end that is coupled to the fast data acquisition module and a second end that is coupled to the second position on the transmission line;

(d) generating, by the fast data acquisition module, a second digitized voltage waveform from the second conditioned voltage waveform;

(e) determining one or more waveform characteristics by analyzing the first digitized voltage waveform and the second digitized voltage waveform;

(f) generating one or more control parameters based on the determined one or more waveform characteristics; and

(g) transmitting the one or more control parameters to the pulsed voltage waveform generator, wherein the pulsed voltage waveform generator is configured to adjust one or more waveform characteristics of a plurality of pulsed voltage waveforms subsequently generated by the pulsed voltage waveform generator due at least in part to the receipt of the transmitted one or more control parameters.

15. The method of claim 14 , wherein the determined one or more waveform characteristics are selected from a group consisting of a pulse amplitude, a pulse voltage offset, a period of one-cycle of a pulse, a rise time of a pulse, a fall time of a pulse and a pulse repetition frequency.

16. The method of claim 14 , wherein determining the one or more waveform characteristics of the first conditioned voltage waveform further comprises comparing attributes of the first digitized voltage waveform and the second digitized voltage waveform with information stored within a memory.

17. The method of claim 16 , wherein the information stored within the memory of the fast data acquisition module comprises target voltage waveform characteristics that are selected from a group consisting of a pulse amplitude, a pulse voltage offset, a period of one-cycle of a pulse, a rise time of a pulse, a fall time of a pulse and a pulse repetition frequency.

18. The method of claim 16 , wherein the first input channel comprises a first voltage divider, and the generated first conditioned voltage waveform comprises a divided waveform generated by use of the first voltage divider.

19. The method of claim 18 , wherein the second input channel comprises a second voltage divider, and the generated second conditioned voltage waveform comprises a divided waveform generated by use of the second voltage divider.

20. The method of claim 19 , wherein the first voltage divider and the second voltage divider each comprises a first voltage divider cascade and a second voltage divider cascade, wherein

the first voltage divider cascade has a dividing ratio in a range of about 10 to 1 to about 100 to 1,

the second voltage divider cascade has a dividing ratio in a range of about 20 to 1 to about 120 to 1, and

the first voltage divider and the second voltage divider each have a different dividing ratio.

21. The method of claim 18 , wherein the first input channel further comprises a low pass filter, and the generated first conditioned voltage waveform further comprises a filtered waveform that is formed by filtering the divided waveform.

22. The method of claim 14 , wherein the first input channel and the second input channel each further comprises a low pass filter that has a frequency response curve comprising a plateau and a cut-off frequency, wherein the plateau is between 1 MHz and about 7 MHz, and the cut-off frequency is in a range of about 5 MHz to about 10 MHz.

23. The method of claim 14 , wherein the transmission line comprises a blocking capacitor that is electrically coupled between the pulsed voltage waveform generator and the biasing electrode, and wherein the first position on the transmission line is between the blocking capacitor and the biasing electrode.

24. The method of claim 23 , wherein the second position on the transmission line is between the blocking capacitor and the pulsed voltage waveform generator.

25. The method of claim 23 , wherein the second end of the second input channel is coupled to an output of a current sensor that is positioned to measure a current flowing within the transmission line.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 5, 2021
From: DORF, LEONID; KAMENETSKIY, EVGENY; ROGERS, JAMES; LUERE, OLIVIER; DHINDSA, RAJINDER; PLOTNIKOV, VIACHESLAV
To: APPLIED MATERIALS, INC.
Reel/Frame 054812/0017 →
Continuity (3)
Continuation 16748847 · Jan 22, 2020
Provisional Application 62795545 · Jan 22, 2019
Related Publication 20200234922A1 · Jul 23, 2020
Cited By (16)
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