IP Library › Granted Patent US 12,249,485
Granted Patent B2
US 12,249,485 · App. 18/527,833 · Granted Mar 11, 2025

Substrate processing apparatus, method of manufacturing semiconductor device, and recording medium

Inventors: Takeshi Yasui (Toyama, JP); Katsunori Funaki (Toyama, JP); Masaki Murobayashi (Toyama, JP); Koichiro Harada (Toyama, JP)
Assignee: Kokusai Electric Corporation
H01J37/3211H01J37/3244H01L21/02247H01L21/308H01J2237/24564H01J2237/334
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Quick Facts
Patent No.
US 12,249,485
App. No.
18/527,833
Granted
Mar 11, 2025
Kind
B2
Abstract

There is provided a plasma vessel in which a process gas is plasma-excited; a substrate process chamber which is in communication with the plasma vessel; a gas supply system supplying the process gas; and a coil installed to wind around an outer periphery of the plasma vessel and supplied with high-frequency power, wherein the coil is installed such that: a distance from an inner periphery of the coil to an inner periphery of the plasma vessel at a predetermined position on the coil is different from a distance from the inner periphery of the coil to the inner periphery of the plasma vessel at another position on the coil; and a distance from the inner periphery of the coil to the inner periphery of the plasma vessel at a position at which an amplitude of a standing wave of a voltage applied to the coil is maximized is maximized.

Claims (32)

1. A substrate processing apparatus, comprising:

a plasma vessel in which a process gas is plasma-excited; and

a coil installed to wind plural times in a spiral form around an outer periphery of the plasma vessel and configured to be supplied with high-frequency power,

wherein the coil is installed such that distances from an inner periphery of the coil to an inner periphery of the plasma vessel at plural positions of the coil between one end of the coil and the other end of the coil include at least a first distance and a second distance different from the first distance.

2. The substrate processing apparatus according to claim 1 , wherein a distance from the inner periphery of the coil to the inner periphery of the plasma vessel at a position, which is located within a range from the one end to the other end of the coil and at which plasma of a capacitively coupled plasma (CCP) component generated by the coil is increased, is set to be the first distance.

3. The substrate processing apparatus according to claim 1 , wherein a distance from the inner periphery of the coil to the inner periphery of the plasma vessel at a position, which is located within a range from the one end to the other end of the coil and at which an amplitude of a standing wave of a voltage applied to the coil is maximized, is set to be the first distance.

4. The substrate processing apparatus according to claim 1 , wherein a distance from the inner periphery of the coil to the inner periphery of the plasma vessel at a position, which is located within a range from the one end to the other end of the coil and at which plasma of an inductively coupled plasma (ICP) component generated by the coil is increased, is set to be the second distance.

5. The substrate processing apparatus according to claim 1 , wherein a distance from the inner periphery of the coil to the inner periphery of the plasma vessel at a position, which is located within a range from the one end to the other end of the coil and at which an amplitude of a standing wave of a current supplied to the coil is maximized, is set to be the second distance.

6. The substrate processing apparatus according to claim 1 , wherein the coil is installed such that a distance from the inner periphery of the coil to the inner periphery of the plasma vessel at least one of positions on the coil, at which an amplitude of a standing wave of the voltage applied to the coil is minimized, is minimized.

7. The substrate processing apparatus according to claim 1 , wherein the coil is installed such that a distance from the inner periphery of the coil to the inner periphery of the plasma vessel at at least one of positions on the coil, at which an amplitude of a standing wave of a current supplied to the coil is maximized, is minimized.

8. The substrate processing apparatus according to claim 7 , wherein at least one of the positions on the coil at which the amplitude of the standing wave of the current supplied to the coil is maximized is a midpoint of the coil, and

wherein the coil is installed such that a distance from the inner periphery of the coil to the inner periphery of the plasma vessel at the midpoint of the coil is minimized.

9. The substrate processing apparatus according to claim 8 , wherein the positions on the coil at which the amplitude of the standing wave of the current supplied to the coil is maximized include the one end and the other end of the coil, and

wherein the coil is installed such that distances from the inner periphery of the coil to the inner periphery of the plasma vessel at a first section of the coil that is wound once around the outer periphery of the plasma vessel from the one end of the coil, a second section of the coil that is wound once around the outer periphery of the plasma vessel from the other end of the coil, and a center section of the coil that is wound once around the outer periphery of the plasma vessel at the midpoint of the coil as a center of the center section are minimized.

10. The substrate processing apparatus according to claim 8 , wherein the coil is installed such that a distance from the inner periphery of the coil to the inner periphery of the plasma vessel at a center section of the coil that is wound multiple times around the outer periphery of the plasma vessel at the midpoint of the coil as a center of the center section is minimized.

11. The substrate processing apparatus according to claim 8 , wherein the coil is installed such that a distance from the inner periphery of the coil to the inner periphery of the plasma vessel at a center section of the coil that is wound once around the outer periphery of the plasma vessel at the midpoint of the coil as a center of the center section is minimized.

12. The substrate processing apparatus according to claim 1 , wherein the coil is installed such that a distance at a position on the coil from the inner periphery of the coil to the inner periphery of the plasma vessel becomes smaller as the position on the coil becomes farther from the position on the coil at which an amplitude of a standing wave of the voltage applied to the coil is maximized.

13. The substrate processing apparatus according to claim 1 , further comprising:

a high-frequency power source configured to supply the high-frequency power to the coil;

a sensor configured to detect a value of reflected power from the coil; and

a controller configured to control the high-frequency power source such that the reflected power is minimized, based on the value of the reflected power detected by the sensor.

14. The substrate processing apparatus according to claim 1 , wherein the coil has an electrical length which is one time a wavelength of the high-frequency power.

15. A method of manufacturing a semiconductor device, comprising:

loading a substrate into a plasma vessel in which a process gas is plasma-excited;

plasma-exciting the process gas supplied into the plasma vessel by supplying high-frequency power to a coil installed to wind plural times in a spiral form around an outer periphery of the plasma vessel; and

processing the substrate with excited plasma,

wherein the coil is installed such that distances from an inner periphery of the coil to an inner periphery of the plasma vessel at plural positions of the coil between one end of the coil and the other end of the coil include at least a first distance and a second distance different from the first distance.

16. A non-transitory computer-readable recording medium storing a program that causes, by a computer, a substrate processing apparatus to perform a process, the process comprising:

loading a substrate into a plasma vessel of the substrate processing apparatus in which a process gas is plasma-excited;

plasma-exciting the process gas supplied into the plasma vessel by supplying high-frequency power to a coil installed to wind plural times in a spiral form around an outer periphery of the plasma vessel; and

processing the substrate with excited plasma,

wherein the coil is installed such that distances from an inner periphery of the coil to an inner periphery of the plasma vessel at plural positions of the coil between one end of the coil and the other end of the coil include at least a first distance and a second distance different from the first distance.

Assignments (2)
CORRECTIVE ASSIGNMENT TO CORRECT THE ASSIGNORSHIP BY ADDING THE FOURTH ASSIGNOR KOICHIRO HARADA INADVERTENTLY NOT LISTED IN THE ORIGINAL RECORDING ON PREVIOUSLY RECORDED ON REEL 65795 FRAME 825. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT OF ASSIGNOR'S INTEREST. Recorded Mar 25, 2024
From: YASUI, TAKESHI; FUNAKI, KATSUNORI; MUROBAYASHI, MASAKI; HARADA, KOICHIRO
To: KOKUSAI ELECTRIC CORPORATION
Reel/Frame 066881/0480 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 7, 2023
From: YASUI, TAKESHI; FUNAKI, KATSUNORI; MUROBAYASHI, MASAKI
To: KOKUSAI ELECTRIC CORPORATION
Reel/Frame 065795/0825 →
Priority Claims (1)
JP 2017-204398 · Oct 23, 2017 · national
Continuity (3)
Continuation 16821511 · Mar 17, 2020
Continuation PCTJP2018035217 · Sep 21, 2018
Related Publication 20240105423A1 · Mar 28, 2024
References Cited (23)
US 5903106A · Young et al. · 1999 [cited by applicant]
US 6253704B1 · Savas · 2001 [cited by applicant]
US 11837440B2 · Yasui · 2023 [cited by examiner]
US 20080179183A1 · Boitnott et al. · 2008 [cited by applicant]
US 20090176381A1 · Hiyama et al. · 2009 [cited by applicant]
US 20090229522A1 · Nishimura · 2009 [cited by applicant]
US 20100269980A1 · Nishimura et al. · 2010 [cited by applicant]
US 20130252433A1 · Ueda · 2013 [cited by examiner]
US 20140106573A1 · Terasaki et al. · 2014 [cited by applicant]
US 20170092647A1 · Nakayama et al. · 2017 [cited by applicant]
JP 11162697A · 1999 [cited by applicant]
JP 200337101A · 2003 [cited by applicant]
JP 2009224596A · 2009 [cited by applicant]
JP 2010258324A · 2010 [cited by applicant]
JP 201475579A · 2014 [cited by applicant]
JP 201618727A · 2016 [cited by applicant]
JP 201769254A · 2017 [cited by applicant]
KR 1020010032200A · 2001 [cited by applicant]
KR 1020080055293A · 2008 [cited by applicant]
International Search Report and Translation, PCT/JP2018/035217, dated Dec. 18, 2018, 5 pgs. [cited by applicant]
Japanese Office Action and Machine Translation of Japanese Patent Application No. 2019-526629, dated Jun. 7, 2019, 7 pgs. [cited by applicant]
Korean Office Action and Machine Translation of Koran Patent Application No. 10-2019-7020190, dated Sep. 18, 2019, 8pgs. [cited by applicant]
Chinese Office Action issued on Mar. 31, 2022 for Chinese Patent Application No. 201880059829.5. [cited by applicant]