IP Library › Granted Patent US 11,450,529
Granted Patent B2
US 11,450,529 · App. 17/096,444 · Granted Sep 20, 2022

Methods for selectively forming a target film on a substrate comprising a first dielectric surface and a second metallic surface

Inventors: Delphine Longrie (Ghent, BE); Shaoren Deng (Leuven, BE); Jan Willem Maes (Wilrijk, BE)
Assignee: ASM IP Holding B.V.
H01L21/02636H01L21/0262H01L21/0273H01L21/32136H01L21/32139
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Quick Facts
Patent No.
US 11,450,529
App. No.
17/096,444
Granted
Sep 20, 2022
Kind
B2
Abstract

Methods for selectively forming a target film on a substrate comprising a first dielectric surface and a second metallic surface are disclosed. The methods may include: contacting the substrate with a plasma generated from a hydrogen containing gas, selectively forming a passivation film from vapor phase reactants on the first dielectric surface while leaving the second metallic surface free from the passivation film, and selectively depositing the target film from vapor phase reactants on the second metallic surface relative to the passivation film.

Claims (49)

1. A method for selectively forming a target film on a substrate comprising a first dielectric surface and a second metallic surface, the method comprising:

contacting the substrate with a plasma generated from a hydrogen containing gas;

selectively forming a passivation film from vapor phase reactants on the first dielectric surface while leaving the second metallic surface free from the passivation film; and

selectively depositing the target film from vapor phase reactants on the second metallic surface relative to the passivation film,

wherein selectively forming the passivation film comprises a cyclical deposition process.

2. The method of claim 1 , wherein the hydrogen containing gas comprises at least one of hydrogen (H 2 ), or ammonia (NH 3 ).

3. The method of claim 1 , wherein selectively forming the passivation film comprises, selectively vapor depositing an organic film on the first dielectric surface.

4. The method of claim 1 , wherein selectively forming the passivation film further comprises etching the passivation film disposed on the second metallic surface.

5. The method of claim 1 , wherein the cyclical deposition process comprises a molecular layer deposition process.

6. The method of claim 1 , wherein the target film comprises: a metal oxide, a metal nitride, or an elemental metal.

7. The method of claim 1 , further comprises etching any target film disposed on the passivation film post selective deposition of the target film.

8. The method of claim 1 , further comprising selectively removing the passivation film disposed over the first dielectric surface without removing the entirety of the target film.

9. A semiconductor structure formed according to the method of claim 1 .

10. A method for selectively forming a target film on a substrate comprising a first dielectric surface and a second metallic surface, the method comprising:

contacting the substrate with a plasma generated from a hydrogen containing gas;

selectively forming a passivation film from vapor phase reactants on the first dielectric surface while leaving the second metallic surface free from the passivation film; and

selectively depositing the target film from vapor phase reactants on the second metallic surface relative to the passivation film

wherein selectively forming the passivation film comprises, selectively vapor depositing an organic film on the first dielectric surface, and

wherein selectively vapor depositing an organic film comprises, selectively depositing a polymer film on the first dielectric surface.

11. A method for selectively forming a target film on a substrate comprising a first dielectric surface and a second metallic surface, the method comprising:

contacting the substrate with a plasma generated from a hydrogen containing gas;

selectively forming a passivation film from vapor phase reactants on the first dielectric surface while leaving the second metallic surface free from the passivation film; and

selectively depositing the target film from vapor phase reactants on the second metallic surface relative to the passivation film,

wherein selectively forming the passivation film further comprises etching the passivation film disposed on the second metallic surface, and

wherein etching the passivation film disposed on the second metallic surface is performed utilizing an oxygen containing gas, or a plasma generated from an oxygen containing gas.

12. A method for selectively forming a target film on a substrate comprising a first dielectric surface and a second metallic surface, the method comprising:

contacting the substrate with a plasma generated from a hydrogen containing gas;

selectively forming a passivation film from vapor phase reactants on the first dielectric surface while leaving the second metallic surface free from the passivation film; and

selectively depositing the target film from vapor phase reactants on the second metallic surface relative to the passivation film,

wherein selectively forming the passivation film further comprises etching the passivation film disposed on the second metallic surface, and

wherein etching the passivation film disposed on the second metallic surface is performed utilizing a hydrogen based plasma.

13. A method for selectively forming a target film on a substrate comprising a first dielectric surface and a second metallic surface, the method comprising:

contacting the substrate with a plasma generated from a hydrogen containing gas;

selectively forming a passivation film from vapor phase reactants on the first dielectric surface while leaving the second metallic surface free from the passivation film; and

selectively depositing the target film from vapor phase reactants on the second metallic surface relative to the passivation film,

wherein selectively depositing the target film comprises a cyclical deposition process.

14. The method of claim 13 , wherein the cyclical deposition process comprises performing one or more unit deposition cycles, wherein a unit deposition cycle comprises:

contacting the substrate with a first vapor phase reactant comprising a metal precursor; and

contacting the substrate with a second vapor phase reactant.

15. The method of claim 14 , wherein the second vapor phase reactant comprises: a reducing agent for the selective deposition of an elemental metal, an oxygen precursor for the selective deposition of a metal oxide, or a nitrogen precursor for the selective deposition of a metal nitride.

16. The method of claim 14 , wherein the metal precursor comprises a cyclopentadienyl based metal precursor.

17. The method of claim 16 , wherein the cyclopentadienyl based metal precursor comprises a metal selected from the group comprising: platinum (Pt), hafnium (Hf), ruthenium (Ru), nickel (Ni), cobalt (Co), zirconium (Zr), rhenium (Re), niobium (Nb), or tantalum (Ta).

18. A method for selectively forming a target film on a substrate comprising a first dielectric surface and a second metallic surface, the method comprising:

contacting the substrate with a plasma generated from a hydrogen containing gas;

selectively forming a passivation film from vapor phase reactants on the first dielectric surface while leaving the second metallic surface free from the passivation film;

selectively depositing the target film from vapor phase reactants on the second metallic surface relative to the passivation film; and

selectively removing the passivation film disposed over the first dielectric surface without removing the entirety of the target film,

wherein the passivation film comprises a polymer film and selectively removing the passivation film comprises exposing the passivation film to an oxidation process.

19. The method of claim 18 , wherein the oxidation process is performed utilizing ozone (O 3 ), or an oxygen based plasma.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 28, 2020
From: LONGRIE, DELPHINE; DENG, SHAOREN; MAES, JAN WILLEM
To: ASM IP HOLDING B.V.
Reel/Frame 054757/0152 →
Continuity (2)
Provisional Application 62940705 · Nov 26, 2019
Related Publication 20210159077A1 · May 27, 2021
Cited By (6)
US 12,227,835 US 12,381,076 US 12,454,752 US 12,476,106 US 12,648,412 US 12,709,796