IP Library › Granted Patent US 10,600,606
Granted Patent B2
US 10,600,606 · App. 16/391,629 · Granted Mar 24, 2020

Vertical vacuum channel transistor with minimized air gap between tip and gate

Inventors: Injo Ok (Loudonville, NY); Choonghyun Lee (Rensselaer, NY); Soon-Cheon Seo (Glenmont, NY); Seyoung Kim (White Plains, NY)
Assignee: International Business Machines Corporation
H01J21/105H01J9/18H01J19/24H01L29/7889H01L21/02532H01L27/11556H01L29/66666H01L29/7827H01L29/78642
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Quick Facts
Patent No.
US 10,600,606
App. No.
16/391,629
Granted
Mar 24, 2020
Kind
B2
Abstract

A method is presented for controlling an electric field from a gate structure. The method includes forming a hardmask over a fin stack including a plurality of layers, forming a first dielectric layer over the hardmask, forming a sacrificial layer over the first dielectric layer, etching the sacrificial layer to expose a top surface of the first dielectric layer, depositing a second dielectric layer in direct contact with exposed surfaces of the first dielectric layer and the sacrificial layer, removing a layer of the plurality of layers of the fin stack to define an air gap within the fin stack, and forming triangle-shaped epitaxial growths within the air gap defined within the fin stack.

Claims (26)

1. A semiconductor structure for controlling an electric field from a gate structure, the semiconductor structure comprising:

a fin stack including a plurality of layers disposed between inner surfaces of a first dielectric layer;

a conductive material disposed in direct contact with outer surfaces of the first dielectric layer; and

an air gap defined within the fin stack with epitaxial growths disposed therein.

2. The semiconductor structure of claim 1 , wherein a second dielectric layer directly contacts outer surfaces of the conductive material.

3. The semiconductor structure of claim 1 , wherein a portion of the first dielectric layer is formed in direct contact with spacers.

4. The semiconductor structure of claim 1 , wherein the epitaxial growths are triangle-shaped epitaxial growths created in a tip-to-tip configuration.

5. The semiconductor structure of claim 1 , wherein a nitride-based dielectric is disposed over the conductive material.

6. The semiconductor structure of claim 1 , wherein gate, emitter, and collector contacts are formed.

7. The semiconductor structure of claim 1 , wherein the epitaxial growths directly contact the fin stacks.

8. The semiconductor structure of claim 1 , wherein the epitaxial growths minimize a space defined by the air gap.

9. The semiconductor structure of claim 8 , wherein minimizing the space defined by the air gap allows for the controlling of the electric field from the gate structure of a transistor.

10. The semiconductor structure of claim 1 , wherein the epitaxial growths are formed from silicon germanium (SiGe).

11. The semiconductor structure of claim 1 , wherein the epitaxial growths are prevented from contacting each other within the air gap.

12. A semiconductor structure, comprising:

a fin stack including a plurality of layers disposed between inner surfaces of a first dielectric layer;

a conductive material disposed in direct contact with outer surfaces of the first dielectric layer; and

an air gap defined within the fin stack, the air gap accommodating triangle-shaped epitaxial growths created in a tip-to-tip configuration.

13. The semiconductor structure of claim 12 , wherein a second dielectric layer directly contacts outer surfaces of the conductive material.

14. The semiconductor structure of claim 12 , wherein a portion of the first dielectric layer is formed in direct contact with spacers.

15. The semiconductor structure of claim 12 , wherein a nitride-based dielectric is disposed over the conductive material.

16. The semiconductor structure of claim 12 , wherein gate, emitter, and collector contacts are formed.

17. The semiconductor structure of claim 12 , wherein the triangle-shaped epitaxial growths directly contact the fin stacks.

18. The semiconductor structure of claim 12 , wherein the triangle-shaped epitaxial growths minimize a space defined by the air gap.

19. The semiconductor structure of claim 18 , wherein minimizing the space defined by the air gap allows for the controlling of the electric field from the gate structure of a transistor.

20. The semiconductor structure of claim 12 , wherein the triangle-shaped epitaxial growths are formed from silicon germanium (SiGe).

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 23, 2019
From: OK, INJO; LEE, CHOONGHYUN; SEO, SOON-CHEON; KIM, SEYOUNG
To: INTERNATIONAL BUSINESS MACHINES CORPORATION
Reel/Frame 048968/0752 →
Continuity (2)
Division 16005204 · Jun 11, 2018
Related Publication 20190378675A1 · Dec 12, 2019