IP Library › Granted Patent US 11,155,922
Granted Patent B2
US 11,155,922 · App. 16/136,943 · Granted Oct 26, 2021

Method of manufacturing semiconductor device, and recording medium

Inventors: Teruo Yoshino (Toyama, JP); Takeshi Yasui (Toyama, JP); Masaki Murobayashi (Toyama, JP); Koichiro Harada (Toyama, JP); Tadashi Terasaki (Toyama, JP); Masanori Nakayama (Toyama, JP)
Assignee: KOKUSAI ELECTRIC CORPORATION
C23C16/505C23C16/44C23C16/4583C23C16/52H01J37/321H01J37/3244H01L21/02238H01L21/02252H01L21/02274H05H1/46
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 11,155,922
App. No.
16/136,943
Granted
Oct 26, 2021
Kind
B2
Abstract

A method of manufacturing a semiconductor device includes: loading a substrate into a substrate process chamber having a plasma generation space in which a processing gas is plasma-excited and a substrate process space communicating with the plasma generation space; mounting the substrate on a substrate mounting table installed inside the substrate process space; adjusting a height of the substrate mounting table so that the substrate is located at a height lower than a lower end of a coil, the coil configured to wind around an outer periphery of the plasma generation space so as to have a diameter larger than a diameter of the substrate; supplying the processing gas to the plasma generation space; plasma-exciting the processing gas supplied to the plasma generation space by supplying a high-frequency power to the coil to resonate the coil; and processing the substrate mounted on the substrate mounting table by the plasma-excitation.

Claims (12)

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

loading a substrate into a substrate process chamber having a plasma generation space in which a processing gas is plasma-excited and a substrate process space communicating with the plasma generation space, wherein a coil is configured to wind around an outer periphery of the plasma generation space so as to have a diameter larger than a diameter of the substrate, and the plasma generation space is arranged between a lower end of the coil and an upper end of the coil;

mounting the substrate on a substrate mounting table installed inside the substrate process space;

adjusting a height of the substrate mounting table by raising or lowering the substrate mounting table according to a power value of a high-frequency power supplied to the coil, so that the substrate mounted on the substrate mounting table is located at a target height according to the power value of the high-frequency power and spaced apart by a distance of 38 mm or more downward from the lower end of the coil where a density of a plasma generated on the substrate while processing the substrate is uniform in a plane direction of the substrate;

supplying the processing gas to the plasma generation space;

plasma-exciting the processing gas supplied to the plasma generation space by supplying the high-frequency power to the coil to resonate the coil, wherein a density of a plasma generated at a height of the lower end of the coil has a distribution in the plane direction of the substrate where a density of the plasma generated at the height of the lower end of the coil and above an outer edge portion of the substrate is higher than a density of the plasma generated at the height of the lower end of the coil and above a central portion of the substrate; and

processing the substrate mounted on the substrate mounting table by the plasma-excitation.

2. The method of claim 1 , wherein in the act of plasma-exciting the processing gas, the highest phase current is generated at the lower end of the coil.

3. The method of claim 1 , wherein in the act of adjusting the height of the substrate mounting table, the substrate mounting table is raised or lowered so that the height of the substrate is spaced apart by a distance of 138 mm or less downward from the lower end of the coil.

4. The method of claim 3 , wherein the diameter of the substrate is about 300 mm, and the diameter of the coil is 500 mm or more.

5. The method of claim 1 , wherein in the act of adjusting the height of the substrate mounting table, the substrate mounting table is raised or lowered according to an allowable range of an in-plane deviation of a plasma density in the plane direction of the substrate, and the allowable range is set for the act of processing the substrate mounted on the substrate mounting table.

6. The method of claim 5 , wherein an in-plane deviation of the plasma density in the plane direction of the substrate at the target height, to which the substrate mounting table is raised or lowered, is generated according to the power value of the high-frequency power supplied to the coil, and falls within the allowable range of the in-plane deviation of the plasma density in the plane direction of the substrate.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 21, 2018
From: YOSHINO, TERUO; YASUI, TAKESHI; MUROBAYASHI, MASAKI; HARADA, KOICHIRO; TERASAKI, TADASHI; NAKAYAMA, MASANORI
To: KOKUSAI ELECTRIC CORPORATION
Reel/Frame 046940/0457 →
Priority Claims (2)
JP JP2016-084506 · Apr 20, 2016 · national
JP JP2016-214304 · Nov 1, 2016 · national
Continuity (2)
Continuation PCTJP2017012666 · Mar 28, 2017
Related Publication 20190032217A1 · Jan 31, 2019