IP Library › Granted Patent US 12,615,997
Granted Patent B2
US 12,615,997 · App. 18/476,223 · Granted Apr 28, 2026

Calibration of an aligner station of a processing system

Inventors: Nicholas Michael Bergantz (San Jose, CA); Andreas Schmid (Sunnyvale, CA); Leon Volfovski (Mountain View, CA); Sanggyum Kim (Sunnyvale, CA); Damon Cox (Jarrell, TX); Paul Wirth (Kalispel, MT)
Assignee: Applied Materials, Inc.
H01L21/681B25J9/1692B25J11/0095H01L21/67196H01L21/67201H01L21/67259H01L21/68707
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Quick Facts
Patent No.
US 12,615,997
App. No.
18/476,223
Granted
Apr 28, 2026
Kind
B2
Abstract

A calibration object is transferred from a processing chamber to an aligner station by one or more robot arms. The calibration object has a first processing chamber orientation in the processing chamber and a second orientation at the aligner station. A first characteristic error value associated with a transfer path between the processing chamber and the aligner is determined based on the first processing chamber orientation and the second orientation of the calibration object at the aligner station. In response to detecting an object at the aligner station to be transferred to the processing chamber along the transfer path, the object is aligned by the aligner station to be placed in the processing chamber according to a target processing chamber orientation based on a target aligner orientation as adjusted by the first characteristic error value determined for the transfer path between the processing chamber and the aligner station.

Claims (51)

1 . A method comprising:

transferring, by one or more robot arms of a processing system, a calibration ring from a processing chamber of the processing system to an aligner station of the processing system, the calibration ring having a first processing chamber orientation in the processing chamber and a second orientation at the aligner station;

determining a first characteristic error value associated with a transfer path between the processing chamber and the aligner station based on the first processing chamber orientation and the second orientation of the calibration ring at the aligner station; and

responsive to detecting, at the aligner station, an object to be transferred to the processing chamber along the transfer path, aligning, by the aligner station, the object to be placed in the processing chamber according to a target processing chamber orientation based on a target aligner orientation as adjusted by the first characteristic error value determined for the transfer path between the processing chamber and the aligner station.

2 . The method of claim 1 , wherein a substrate support of the processing chamber comprises one or more coupling components, the method further comprising:

placing the calibration ring in the processing chamber by the one or more robot arms, wherein, responsive to the calibration ring being placed at the substrate support in the processing chamber, the one or more coupling components engage with the calibration ring to cause the calibration ring to be placed at the target processing chamber orientation.

3 . The method of claim 2 , wherein the one or more coupling components comprise one or more lift pins.

4 . The method of claim 1 , wherein the calibration ring is composed of a material having a first thermal expansion coefficient, and wherein a substrate support of the processing chamber has a second thermal expansion coefficient that is lower than the first thermal expansion coefficient, the method further comprising:

placing the calibration ring around the substrate support in the processing chamber by the one or more robot arms, wherein upon placement of the calibration ring in the processing chamber, the calibration ring has an orientation error associated with the first characteristic error value; and

heating an interior of the processing chamber, wherein responsive to the heating the calibration ring expands more than the substrate support, causing a change in orientation of the calibration ring that removes the orientation error; and

cooling the interior of the processing chamber, wherein the calibration ring has the first processing chamber orientation in the processing chamber after the cooling.

5 . The method of claim 1 , further comprising:

capturing, by a camera at the processing chamber, a calibration object image depicting the first processing chamber orientation of the calibration ring in the processing chamber; and

determining the first processing chamber orientation of the calibration ring in the processing chamber based on the captured calibration object image.

6 . The method of claim 5 , further comprising:

capturing, by an additional camera at the aligner station, an additional calibration object image depicting the second orientation of the calibration ring at the aligner station; and

determining the second orientation of the calibration ring at the aligner station based on the captured additional calibration object image.

7 . The method of claim 1 , wherein transferring the calibration ring from the processing chamber to the aligner station comprises:

retrieving, by a first robot arm of a transfer chamber connected to the processing chamber, the calibration ring from the processing chamber;

placing, by the first robot arm, the calibration ring in a load lock connected to the transfer chamber;

retrieving the calibration ring from the load lock by a second robot arm of a factory interface connected to the load lock; and

placing, by the second robot arm, the calibration ring at the aligner station, wherein the aligner station is housed in or connected to the factory interface.

8 . The method of claim 1 , wherein the first processing chamber orientation corresponds to the target processing chamber orientation.

9 . A system, comprising:

one or more robot arms;

one or more processing chambers;

an aligner station; and

a controller operatively connected to the one or more robot arms and the aligner station, wherein the controller is to:

cause the one or more robot arms to transfer a calibration ring from a processing chamber of the one or more processing chambers to the aligner station, the calibration ring having a first processing chamber orientation in the processing chamber and a second orientation at the aligner station;

determine a first characteristic error value associated with a transfer path between the processing chamber and the aligner station based on the first processing chamber orientation and the second orientation of the calibration ring at the aligner station; and

responsive to detecting, at the aligner station, an object to be transferred to the processing chamber along the transfer path, cause the aligner station to align the object to be placed in the processing chamber according to a target processing chamber orientation based on a target aligner orientation as adjusted by the first characteristic error value determined for the transfer path between the processing chamber and the aligner station.

10 . The system of claim 9 , wherein a substrate support of the processing chamber comprises one or more coupling components, and wherein the controller is further to:

cause the calibration ring to be placed in the processing chamber by the one or more robot arms, wherein, responsive to the calibration ring being placed at the substrate support in the processing chamber, the one or more coupling components engage with the calibration ring to cause the calibration ring to be placed at the target processing chamber orientation.

11 . The system of claim 10 , wherein the one or more coupling components comprise one or more lift pins.

12 . The system of claim 9 , wherein the calibration ring is composed of a material having a first thermal expansion coefficient, and wherein a substrate support of the processing chamber has a second thermal expansion coefficient that is lower than the first thermal expansion coefficient, and wherein the controller is further to:

cause the calibration ring to be placed around the substrate support in the processing chamber by the one or more robot arms, wherein upon placement of the calibration ring in the processing chamber, the calibration ring has an orientation error associated with the first characteristic error value; and

cause an interior of the processing chamber to be heated, wherein responsive to the heating the calibration ring expands more than the substrate support, causing a change in orientation of the calibration ring that removes the orientation error; and

cause the interior of the processing chamber to be cooled, wherein the calibration ring has the first processing chamber orientation in the processing chamber after the cooling.

13 . The system of claim 9 , wherein the controller is further to:

cause a camera at the processing chamber to capture a calibration object image depicting the first processing chamber orientation of the calibration ring in the processing chamber; and

determine the first processing chamber orientation of the calibration ring in the processing chamber based on the captured calibration object image.

14 . The system of claim 13 , wherein the controller is further to:

cause an additional camera at the aligner station to capture an additional calibration object image depicting the second orientation of the calibration ring at the aligner station; and

determine the second orientation of the calibration ring at the aligner station based on the captured additional calibration object image.

15 . A non-transitory computer readable storage medium comprising instructions for a server that, when executed by a processing device, cause the processing device to:

cause one or more robot arms to transfer a calibration ring from a processing chamber to an aligner station, the calibration ring having a first processing chamber orientation in the processing chamber and a second orientation at the aligner station;

determine a first characteristic error value associated with a transfer path between the processing chamber and the aligner station based on the first processing chamber orientation and the second orientation of the calibration ring at the aligner station; and

responsive to detecting, at the aligner station, an object to be transferred to the processing chamber along the transfer path, cause the aligner station to align the object to be placed in the processing chamber according to a target processing chamber orientation based on a target aligner orientation as adjusted by the first characteristic error value determined for the transfer path between the processing chamber and the aligner station.

16 . The non-transitory computer readable storage medium of claim 15 , wherein a substrate support of the processing chamber comprises one or more coupling components, and wherein the processing device is further to:

cause the calibration ring to be placed in the processing chamber by the one or more robot arms, wherein, responsive to the calibration ring being placed at the substrate support in the processing chamber, the one or more coupling components engage with the calibration ring to cause the calibration ring to be placed at the target processing chamber orientation.

17 . The non-transitory computer readable storage medium of claim 16 , wherein the calibration object comprises a calibration wafer, wherein the one or more coupling components comprise one or more lift pins.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 28, 2023
From: BERGANTZ, NICHOLAS MICHAEL; SCHMID, ANDREAS; VOLFOVSKI, LEON; KIM, SANGGYUM; COX, DAMON; WIRTH, PAUL
To: APPLIED MATERIALS, INC.
Reel/Frame 065066/0274 →
Continuity (3)
Continuation 16990839 · Aug 11, 2020
Provisional Application 62888929 · Aug 19, 2019
Related Publication 20240021458A1 · Jan 18, 2024
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