IP Library › Granted Patent US 10,832,917
Granted Patent B2
US 10,832,917 · App. 15/618,309 · Granted Nov 10, 2020

Low oxygen cleaning for CMP equipment

Inventors: Donald F. Canaperi (Bridgewater, CT); Pavan S. Chinthamanipeta (Clifton Park, NY); Raghuveer R. Patlolla (Guilderland, NY); Cornelius B. Peethala (Albany, NY)
Assignee: International Business Machines Corporation
H01L21/30625B08B3/08B08B3/10H01L21/02057H01L21/02074H01L21/67046H01L21/67051
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Quick Facts
Patent No.
US 10,832,917
App. No.
15/618,309
Granted
Nov 10, 2020
Kind
B2
Abstract

A method is presented for post chemical mechanical polishing (PCMP) clean for cleaning a chemically-mechanically polished semiconductor wafer. The method includes planarizing the semiconductor wafer, subjecting the semiconductor wafer to a de-oxygenated mixture of DI water and PCMP solution, and applying a de-oxygenated environment during the cleaning. The solution can be de-oxygenated by nitrogen degas or by introducing a reducing agent. The environment can be de-oxygenated by purging with an inert gas, such as nitrogen.

Claims (18)

1. A structure for cleaning a chemically-mechanically polished semiconductor wafer by a post chemical mechanical polishing (PCMP) clean method, the structure comprising:

a polishing pad having a polishing surface to polish the semiconductor wafer;

a mix tank directly fed with a mixture of DI Water and PCMP solution, the mixture deoxygenated by an inert gas before the mixture is dispensed on the semiconductor wafer; and

a post CMP module physically connected directly to the mix tank, without any intermediate physical components therebetween, and including a process chamber to receive the semiconductor wafer directly from the mix tank, the post CMP module creating a complete ambient environment therein via introduction of an oxygen scavenger.

2. The structure of claim 1 , wherein the inert gas is continuously purged in a liquid to reduce dissolved oxygen concentration.

3. The method in claim 2 , wherein the inert gas is a nitrogen gas.

4. The structure of claim 1 , wherein the solution is deoxygenated by incorporating a reducing agent.

5. The structure of claim 4 , wherein the reducing agent is an ascorbic acid.

6. The structure of claim 4 , wherein the reducing agent is a phosphorous acid.

7. The structure of claim 1 , wherein a nitrogen-containing ambient is selected from the group consisting of N 2 , NH 3 , NH 4 , NO, and NH x , where x is between 0-1.

8. A structure for cleaning a chemically-mechanically polished semiconductor wafer by a post chemical mechanical polishing (PCMP) clean method, the structure comprising:

an inlet for receiving nitrogen gas or a reducing agent;

a polishing pad having a polishing surface to polish the semiconductor wafer;

a mix tank directly fed with a mixture of DI Water and PCMP solution, the mixture deoxygenated by the nitrogen gas or the reducing agent before the mixture is dispensed on the semiconductor wafer; and

a post CMP module physically connected directly to the mix tank, without any intermediate physical components therebetween, and including a process chamber to receive the semiconductor wafer directly from the mix tank, the post CMP module creating a complete ambient environment therein via introduction of an oxygen scavenger.

9. The structure of claim 8 , wherein the inert gas is continuously purged in a liquid to reduce dissolved oxygen concentration.

10. The structure of claim 1 , wherein the clean method takes place in a low-oxygen environment where the ambient oxygen concentration is less than 30 parts per billion (ppb).

11. The structure of claim 8 , wherein the clean method takes place in a low-oxygen environment where the ambient oxygen concentration is less than 30 parts per billion (ppb).

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 9, 2017
From: CANAPERI, DONALD F.; CHINTHAMANIPETA, PAVAN S.; PATLOLLA, RAGHUVEER R.; PEETHALA, CORNELIUS B.
To: INTERNATIONAL BUSINESS MACHINES CORPORATION
Reel/Frame 042659/0004 →
Continuity (1)
Related Publication 20180358230A1 · Dec 13, 2018
Cited By (2)
US 12,485,515 US 12,635,440