IP Library › Granted Patent US 12,077,856
Granted Patent B2
US 12,077,856 · App. 18/314,707 · Granted Sep 3, 2024

Reactor for coating particles in stationary chamber with rotating paddles and gas injection

Inventors: Jonathan Frankel (Los Gatos, CA); Colin C. Neikirk (Mountain View, CA); Pravin K. Narwankar (Sunnyvale, CA); Quoc Truong (San Ramon, CA); Govindraj Desai (Karnataka, IN); Sekar Krishnasamy (Bangalore, IN); Shrikant Swaminathan (Santa Clara, CA)
Assignee: Applied Materials, Inc.
C23C16/4417B01F27/051B01F27/0726B01F27/074B01F27/112B01F27/70B01J19/0066B01J19/18C23C16/45555
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Quick Facts
Patent No.
US 12,077,856
App. No.
18/314,707
Granted
Sep 3, 2024
Kind
B2
Abstract

A reactor for coating particles includes a stationary vacuum chamber that has a lower portion that forms a half-cylinder and an upper portion and that holds a bed of particles to be coated, a vacuum port in the upper portion of the chamber, a paddle assembly, and a gas injection assembly that includes a vaporizer to convert a first liquid to a first reactant or precursor gas, a manifold to receive the first reactant or precursor gas from the vaporizer, and a plurality of channels leading from the manifold to a plurality of apertures located in the lower portion of the chamber.

Claims (23)

1. A reactor for coating particles, comprising:

a stationary vacuum chamber to hold a bed of particles to be coated, the stationary vacuum chamber having a lower portion that forms a half-cylinder and an upper portion;

a vacuum port in the upper portion of the stationary vacuum chamber;

a paddle assembly including a rotatable drive shaft and a plurality of paddles extending radially from the drive shaft such that rotation of the drive shaft by a motor orbits the plurality of paddles about the drive shaft inside the stationary vacuum chamber; and

a first gas injection assembly including

a vaporizer configured to convert a first liquid received from a fluid source into a first reactant or precursor gas,

a manifold including a gas distribution chamber and a first inlet aperture coupling the vaporizer to the gas distribution chamber, wherein the gas distribution chamber has a width along a longitudinal first axis of the drive shaft and a height along a second axis perpendicular to the longitudinal first axis and the first inlet aperture is narrower than the gas distribution chamber along the first axis and the second axis, and

a plurality of channels leading from the manifold to a plurality of apertures located in the lower portion of the stationary vacuum chamber.

2. The reactor of claim 1 , comprising a plate forming a cover over a recess in a body to provide the gas distribution chamber of the manifold, and wherein the vaporizer directly contacts the plate.

3. The reactor of claim 2 , wherein the manifold and plurality of channels are formed in a unitary body.

4. The reactor of claim 2 , wherein the body is a side wall of the vacuum chamber.

5. The reactor of claim 1 , comprising a passage to deliver an inert gas to the gas injection assembly.

6. The reactor of claim 5 , wherein the manifold further includes a second inlet aperture coupling the passage to the gas distribution chamber.

7. The reactor of claim 6 , wherein the second inlet aperture is narrower than the gas distribution chamber along the first axis and the second axis.

8. The reactor of claim 5 , wherein the passage is fluidically connected directly to the vaporizer.

9. The reactor of claim 5 , wherein the passage is fluidically connected directly to an inlet to carry the first liquid from the fluid source to the vaporizer.

10. The reactor of claim 1 , wherein the vaporizer includes a cavity, a heater to heat walls of the cavity, and a nozzle to aerosolize the first liquid as the first liquid passes into cavity.

11. The reactor of claim 1 , wherein each channel of the plurality of channels further has a restriction between the manifold and a respective aperture of the plurality of apertures.

12. The reactor of claim 1 , wherein the vaporizer is immediately adjacent the manifold.

13. The reactor of claim 1 , wherein the plurality of apertures extend in a first row parallel to the longitudinal first axis of the drive shaft.

14. The reactor of claim 13 , wherein the plurality of apertures is a first plurality of apertures, and the first gas injection assembly is configured to inject the first reactant or precursor gas through the first plurality of apertures.

15. The reactor of claim 14 , comprising a second gas injection assembly to receive a second fluid from a second fluid source and having a second plurality of apertures configured to inject a second reactant or precursor gas into the lower portion of the chamber.

16. The reactor of claim 15 , wherein the second plurality of apertures extend in a second row parallel to the longitudinal first axis of the drive shaft.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 9, 2023
From: FRANKEL, JONATHAN; NEIKIRK, COLIN C.; NARWANKAR, PRAVIN K.; TRUONG, QUOC; DESAI, GOVINDRAJ; KRISHNASAMY, SEKAR; SWAMINATHAN, SHRIKANT
To: APPLIED MATERIALS, INC.
Reel/Frame 064539/0651 →
Continuity (3)
Division 16855871 · Apr 22, 2020
Provisional Application 62838237 · Apr 24, 2019
Related Publication 20230279543A1 · Sep 7, 2023
Cited By (1)
US 12,680,163