IP Library Granted Patent US 9,382,615
Granted Patent B2
US 9,382,615 · App. 13/802,382 · Granted Jul 5, 2016

Vapor deposition of LiF thin films

Inventors: Miia Mäntymäki (Helsinki, FI); Jani Hämäläinen (Espoo, FI); Mikko Ritala (Espoo, FI); Markku Leskelä (Espoo, FI)
Assignee: ASM IP HOLDING B.V.
C23C16/08C23C16/30C23C16/45534
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Quick Facts
Patent No.
US 9,382,615
App. No.
13/802,382
Granted
Jul 5, 2016
Kind
B2
Abstract

A vapor deposition process for forming a thin film on a substrate in a reaction chamber where the process includes contacting the substrate with a fluoride precursor. The process results in the formation of a lithium fluoride thin film.

Claims (35)

1. An atomic layer deposition (ALD) process for forming a thin film on a substrate in a reaction chamber, the process comprising:

contacting the substrate with a vapor phase lithium precursor; and

subsequently contacting the substrate with a separate vapor phase fluoride precursor,

wherein the fluoride precursor reacts with a chemisorbed species of the lithium precursor on the substrate surface to form a lithium fluoride thin film.

2. The process of claim 1 , wherein the lithium precursor comprises at least one of Lithd, lithium tert-butoxide, or lithium hexamethyldisilazane.

3. The process of claim 1 , wherein the fluoride precursor comprises at least one of TiF 4 , TaF 5 , WF 6 , MoF x , F 2 , HF, hexafluoroacetylacetone, organic fluorine compounds, or metalbetadiketonates comprising fluorine.

4. The process of claim 1 ,

wherein the lithium precursor is chosen from the following: lithium 2,2,6,6-tetramethyl-3,5-heptanedionate, lithium tert-butoxide, and lithium hexamethyldisilazane; and

wherein the fluoride precursor is chosen from the following: TiF4, TaF 5 , WF 6 , MoF x , F 2 , HF, hexafluoroacetylacetone, organic fluorine compounds, and metal betadiketones comprising fluorine.

5. The process of claim 1 , wherein the ALD process comprises:

contacting the substrate with the vapor phase lithium precursor such that at most a molecular monolayer of a chemisorbed species of the lithium precursor is formed on the substrate surface,

removing excess lithium precursor,

contacting the substrate with the vapor phase fluoride precursor, wherein the fluoride precursor reacts with the chemisorbed species of the lithium precursor on the substrate surface to form LiF;

removing excess fluoride precursor, and

repeating the contacting and purging steps until a lithium fluoride thin film of a desired thickness has been formed.

6. The process of claim 5 , additionally comprising contacting the substrate with a calcium precursor or an oxygen precursor.

7. The process of claim 5 , further comprising contacting the substrate with a magnesium precursor.

8. A vapor deposition process for forming a lithium fluoride thin film on a substrate in a reaction chamber, the process comprising:

forming a magnesium fluoride film; and

contacting the magnesium fluoride film with a lithium precursor;

wherein the magnesium fluoride film and lithium precursor react to form lithium fluoride thin film on a surface of the substrate.

9. The process of claim 8 , wherein the lithium precursor comprises at least one of lithium 2,2,6,6-tetramethyl-3,5-heptanedionate, lithium tert-butoxide, and lithium hexamethyldisilazane.

10. The process of claim 8 , wherein the magnesium fluoride film is formed by either chemical vapor deposition or atomic layer deposition.

11. An atomic layer deposition (ALD) process for forming a lithium fluoride thin film comprising a plurality of deposition cycles comprising:

contacting the substrate with a vapor phase intermediate precursor, such that at most a molecular monolayer of the intermediate precursor is formed on the substrate surface,

removing excess intermediate precursor;

contacting the substrate with a vapor phase fluoride precursor, wherein the fluoride precursor reacts with the intermediate precursor on the substrate surface to form an intermediate fluoride that does not comprise lithium;

removing excess fluoride precursor;

contacting the substrate with a vapor phase lithium precursor, such that at most a molecular monolayer of lithium fluoride is formed on the substrate surface; and

removing excess lithium precursor.

12. The process of claim 11 , wherein the intermediate precursor is a magnesium precursor.

13. The process of claim 12 , wherein the intermediate fluoride is magnesium fluoride.

14. The process of claim 11 , wherein the fluoride precursor is selected from the group consisting of TiF 4 , TaF 5 , WF 6 , MoF x , F 2 , HF, hexafluoroacetylacetone, and betadiketonates comprising fluorine.

15. The process of claim 11 , wherein the lithium precursor is selected from the group consisting of lithium 2,2,6,6-tetramethyl-3,5-heptanedionate, lithium tert-butoxide, and lithium hexamethyldisilazane.

16. The process of claim 11 , wherein the LiF film has a conformality of at least about 50% on structures having an aspect ratio of at least about 3.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 27, 2013
From: MANTYMAKI, MIIA; HAMALAINEN, JANI; RITALA, MIKKO; LESKELA, MARKKU
To: ASM IP HOLDING B.V.
Reel/Frame 030099/0945 →
Continuity (2)
Provisional Application 61713340 · Oct 12, 2012
Related Publication 20140106070A1 · Apr 17, 2014