Non-line of sight deposition of erbium based plasma resistant ceramic coating
Described herein is a method of depositing a plasma resistant ceramic coating onto a surface of a chamber component using a non-line-of-sight (NLOS) deposition process, such as atomic layer deposition (ALD) and chemical vapor deposition (CVD). The plasma resistant ceramic coating consists of an erbium containing oxide, an erbium containing oxy-fluoride, or an erbium containing fluoride. Also described are chamber components having a plasma resistant ceramic coating of an erbium containing oxide, an erbium containing oxy-fluoride, or an erbium containing fluoride.
1. An article comprising:
a surface; and
a plasma resistant ceramic coating on the surface of the article, wherein the plasma resistant ceramic coating has an approximately zero porosity and has a uniform thickness with a thickness variation of less than +/−5%, and wherein the plasma resistant ceramic coating is selected from a group consisting of:
an erbium containing fluoride of Y x Er y F z , where x, y and z are selected such that the erbium containing fluoride of Y x Er y F z contains over 0 mol % to under 100 mol % YF 3 and over 0 mol % to under 100 mol % ErF 3 , and
an erbium containing oxy-fluoride of Y m Er x O y F z , where w, x, y and z are selected such that the erbium containing oxy-fluoride of Y m Er x O y F z contains over 0 mol % to under 100 mol % of two or more of Y 2 O 3 ,YF 3 , Er 2 O 3 and ErF 3 ,
wherein the article comprises a portion having an aspect ratio between 10:1 and 200:1, and wherein the surface of the article that is coated with the plasma resistant ceramic coating comprises the portion of the article.
2. The article of claim 1 , wherein the article is a chamber component selected from a group consisting of a shower head, a diffuser, a nozzle, and a gas line.
3. The article of claim 1 , wherein the article comprises a conduit, wherein the surface of the article onto which the plasma resistant ceramic coating is deposited comprises an internal surface of the conduit that has an aspect ratio between 50:1 and 200:1.
4. The article of claim 1 , wherein the plasma resistant coating has a thickness of 2 nm to 1 micron.
5. A chamber component, comprising:
a portion having an aspect ratio between 10:1 and 200:1; and
a plasma resistant ceramic coating on a surface of the portion the chamber component, wherein the plasma resistant ceramic coating has an approximately zero porosity and has a uniform thickness with a thickness variation of less than +/−5%, and wherein the plasma resistant ceramic coating comprises a multi-layer stack comprising:
a first layer consisting essentially of Er 2 O 3 or ErF 3 ; and
a second layer consisting of a different material than the first layer, wherein the second layer consists essentially of Er 2 O 3 , Al 2 O 3 , ErF 3 , Y 2 O 3 , YF 3 , or ZrO 2 .
6. The chamber component of claim 5 , wherein the chamber component is selected from a group consisting of a shower head, a diffuser, a nozzle, and a gas line.
7. The chamber component of claim 5 , wherein the aspect ratio is between 50:1 and 200:1.
8. The chamber component of claim 7 , wherein the portion having the aspect ratio is a conduit.
9. The chamber component of claim 5 , wherein the first layer consists essentially of Er 2 O 3 and the second layer consists essentially of YF 3 .
10. The chamber component of claim 5 , wherein the plasma resistant ceramic coating further comprises one or more additional layers each consisting essentially of one of Er 2 O 3 , Al 2 O 3 , ErF 3 , Y 2 O 3 or YF 3 .
11. The chamber component of claim 5 , wherein the first layer consists essentially of Er 2 O 3 and the second layer consists essentially of Al 2 O 3 .
12. The chamber component of claim 5 , wherein the first layer consists essentially of Er 2 O 3 and the second layer consists essentially of Y 2 O 3 .
13. The chamber component of claim 5 , wherein the first layer consists essentially of Er 2 O 3 and the second layer consists essentially of ErF 3 .
14. The chamber component of claim 5 , wherein the first layer consists essentially of ErF 3 and the second layer consists essentially of YF 3 .
15. The chamber component of claim 5 , wherein the first layer consists essentially of Er 2 O 3 and the second layer consists essentially of ZrO 2 .
16. The chamber component of claim 5 , wherein the first layer consists essentially of Er 2 O 3 and the second layer consists essentially of Y 2 O 3 , the multi-layer stack further comprising:
a third layer consisting essentially of ZrO 2 or Al 2 O 3 .
17. The chamber component of claim 5 , wherein the first layer and the second layer each has a thickness of 0.1-100 nm.
18. An article comprising:
a surface; and
a plasma resistant ceramic coating on the surface of the article, wherein the plasma resistant ceramic coating has an approximately zero porosity and has a uniform thickness with a thickness variation of less than +/−5%, and wherein the plasma resistant ceramic coating is an interdiffused mixture of a plurality of alternating layers, the plurality of alternating layers comprising:
a first plurality of layers consisting essentially of Er 2 O 3 or ErF 3 ; and
a second plurality of layers consisting of a different material than the first layer, wherein the second layer consists essentially of Er 2 O 3 , Al 2 O 3 , ErF 3 , Y 2 O 3 , YF 3 , or ZrO 2 ,
wherein the article comprises a portion having an aspect ratio between 10:1 and 200:1, and wherein the surface of the article that is coated with the plasma resistant ceramic coating comprises the portion of the article.