IP Library › Granted Patent US 11,081,318
Granted Patent B2
US 11,081,318 · App. 16/220,833 · Granted Aug 3, 2021

Geometrically selective deposition of dielectric films utilizing low frequency bias

Inventors: Kenichi Ohno (Sunnyvale, CA); Keiichi Tanaka (San Jose, CA); Li-Qun Xia (Cupertino, CA); Tsutomu Tanaka (Santa Clara, CA); Dmitry A. Dzilno (Sunnyvale, CA); Mario D. Silvetti (Morgan Hill, CA); John C. Forster (Mt. View, CA); Rakesh Ramadas (Santa Clara, CA); Mike Murtagh (Santa Clara, CA); Alexander V. Garachtchenko (Mountain View, CA)
Assignee: APPLIED MATERIALS, INC.
H01J37/32385C23C16/45519C23C16/45544C23C16/507C23C16/56H01J37/3244H01J37/32091H01J37/32568H01J2237/332H01J2237/3341
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Quick Facts
Patent No.
US 11,081,318
App. No.
16/220,833
Granted
Aug 3, 2021
Kind
B2
Abstract

Apparatus and methods for depositing and treating or etching a film are described. A batch processing chamber includes a plurality of processing regions with at least one plasma processing region. A low frequency bias generator is connected to a susceptor assembly to intermittently apply a low frequency bias to perform a directional treatment or etching the deposited film.

Claims (29)

1. A processing chamber comprising:

a susceptor assembly having a top surface and a central axis to rotate a plurality of substrates positioned on the top surface around the central axis of the susceptor assembly;

a gas distribution assembly comprising a plurality of processing regions, each processing region separated from adjacent processing regions by a gas curtain, at least one of the processing regions comprises a plasma processing region with a main deposition generator operating at a main deposition generator frequency; and

a low frequency bias generator electrically connected to the susceptor assembly through an interface box to apply a low frequency bias to the susceptor assembly, the interface box comprising a DC blocking capacitor for DC isolation of the susceptor assembly.

2. The processing chamber of claim 1 , wherein the low frequency bias generator has a frequency of about 325 kHz.

3. The processing chamber of claim 1 , wherein the interface box comprises at least one RF filter to block harmonics of the main deposition generator frequency.

4. The processing chamber of claim 1 , wherein the interface box comprises at least one low-pass filter to block frequencies above the low frequency.

5. The processing chamber of claim 1 , wherein the main deposition generator frequency is about 13.56 MHz.

6. The processing chamber of claim 1 , wherein the plasma processing region generates a remote plasma.

7. The processing chamber of claim 6 , wherein the plasma processing region comprises a vertical plasma source with an RF hot electrode and a return electrode positioned a distance above the top surface of the susceptor assembly.

8. The processing chamber of claim 1 , wherein the plasma processing region generates a direct plasma.

9. The processing chamber of claim 8 , wherein the main deposition generator applies power to the gas distribution assembly and the susceptor assembly acts as a return electrode, the main deposition generator applying sufficient energy to ignite a plasma in the plasma processing region and not ignite a plasma in non-plasma processing regions.

10. The processing chamber of claim 1 , further comprising a controller connected to the susceptor assembly, gas distribution assembly, main deposition generator and low frequency bias generator to control functioning thereof.

11. The processing chamber of claim 10 , wherein the controller has one or more configurations to control functions of the processing chamber, the one or more configurations selected from a first configuration to rotate the susceptor assembly around the central axis, a second configuration to control flows of gases into each of the processing regions, a third configuration to control power to the main deposition generator and a fourth configuration to control power to the low frequency bias generator.

12. A processing chamber comprising:

a susceptor assembly having a top surface and a central axis to rotate a plurality of substrates positioned on the top surface around the central axis of the susceptor assembly;

a gas distribution assembly comprising a plurality of processing regions, each processing region separated from adjacent processing regions by a gas curtain, at least one of the processing regions comprises a plasma processing region with a main deposition generator operating at a main deposition generator frequency, wherein the plasma processing region comprises a vertical plasma source with an RF hot electrode and a return electrode positioned a distance above the top surface of the susceptor assembly and generates a remote plasma; and

a low frequency bias generator electrically connected to the susceptor assembly to apply a low frequency bias to the susceptor assembly.

13. The processing chamber of claim 12 , wherein the low frequency bias generator is connected to the susceptor assembly through an interface box, the interface box comprises a DC blocking capacitor for DC isolation of the susceptor assembly.

14. The processing chamber of claim 13 , wherein the interface box comprises at least one RF filter to block harmonics of the main deposition generator frequency and at least one low-pass filter to block frequencies above the low frequency.

15. The processing chamber of claim 12 , wherein the main deposition generator applies power to the gas distribution assembly and the susceptor assembly acts as a return electrode, the main deposition generator applying sufficient energy to ignite a plasma in the plasma processing region and not ignite a plasma in non-plasma processing regions.

16. The processing chamber of claim 12 , further comprising a controller connected to the susceptor assembly, gas distribution assembly, main deposition generator and low frequency bias generator to control functioning thereof, the controller having one or more configurations to control functions of the processing chamber, the one or more configurations selected from a first configuration to rotate the susceptor assembly around the central axis, a second configuration to control flows of gases into each of the processing regions, a third configuration to control power to the main deposition generator and a fourth configuration to control power to the low frequency bias generator.

17. A processing chamber comprising:

a susceptor assembly having a top surface and a central axis to rotate a plurality of substrates positioned on the top surface around the central axis of the susceptor assembly;

a gas distribution assembly comprising a plurality of processing regions, each processing region separated from adjacent processing regions by a gas curtain, at least one of the processing regions comprises a plasma processing region with a main deposition generator operating at a main deposition generator frequency, wherein the at least one of the processing regions generates a direct plasma and the main deposition generator applies power to the gas distribution assembly and the susceptor assembly acts as a return electrode, the main deposition generator applying sufficient energy to ignite a plasma in the plasma processing region and not ignite a plasma in non-plasma processing regions; and

a low frequency bias generator electrically connected to the susceptor assembly to apply a low frequency bias to the susceptor assembly.

18. The processing chamber of claim 17 , wherein the low frequency bias generator is connected to the susceptor assembly through an interface box, the interface box comprising a DC blocking capacitor for DC isolation of the susceptor assembly, at least one RF filter to block harmonics of the main deposition generator frequency and at least one low-pass filter to block frequencies above the low frequency.

19. The processing chamber of claim 17 , wherein the main deposition generator frequency is about 13.56 MHz.

20. The processing chamber of claim 17 , further comprising a controller connected to the susceptor assembly, gas distribution assembly, main deposition generator and low frequency bias generator to control functioning thereof, the controller having one or more configurations to control functions of the processing chamber, the one or more configurations selected from a first configuration to rotate the susceptor assembly around the central axis, a second configuration to control flows of gases into each of the processing regions, a third configuration to control power to the main deposition generator and a fourth configuration to control power to the low frequency bias generator.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 31, 2019
From: OHNO, KENICHI; TANAKA, KEIICHI; XIA, LI-QUN; TANAKA, TSUTOMU; DZILNO, DMITRY A.; SILVETTI, MARIO D.; FORSTER, JOHN C.; RAMADAS, RAKESH; MURTAGH, MIKE; GARACHTCHENKO, ALEXANDER V.
To: APPLIED MATERIALS, INC.
Reel/Frame 050874/0870 →
Continuity (2)
Provisional Application 62599688 · Dec 16, 2017
Related Publication 20190189400A1 · Jun 20, 2019
Cited By (1)
US 12,327,748