IP Library › Granted Patent US 10,381,438
Granted Patent B2
US 10,381,438 · App. 15/802,067 · Granted Aug 13, 2019

Vertically stacked NFETS and PFETS with gate-all-around structure

Inventors: Jingyun Zhang (Albany, NY); Takashi Ando (Tuckahoe, NY); Pouya Hashemi (White Plains, NY); Choonghyun Lee (Rensselaer, NY); Alexander Reznicek (Troy, NY)
Assignee: International Business Machines Corporation
H01L29/0673H01L21/02112H01L21/02164H01L21/02236H01L21/02532H01L21/30604H01L21/823807H01L21/823814H01L21/823828H01L21/823878H01L21/84H01L27/092H01L27/1203H01L29/0653H01L29/0847H01L29/1037H01L29/165H01L29/42392H01L29/66545H01L29/66553H01L29/66742H01L29/78651H01L29/78684H01L21/02255H01L21/31116
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 10,381,438
App. No.
15/802,067
Granted
Aug 13, 2019
Kind
B2
Abstract

A semiconductor structure including vertically stacked nFETs and pFETs containing suspended semiconductor channel material nanosheets having an isolation layer located between a pFET S/D structure and an nFET S/D region is provided together with a method of forming such a structure. The pFET S/D structure includes a pFET S/D SiGe region having a first germanium content and an overlying SiGe region having a second germanium content that is greater than the first germanium content.

Claims (15)

1. A semiconductor structure comprising:

a p-type field effect transistor (pFET) device comprising a first functional gate structure present on physically exposed surfaces, and between, each semiconductor channel material nanosheet of a first set of vertically stacked and suspended semiconductor channel material nanosheets, and a pFET source/drain (S/D) structure present on each side of the first set of vertically stacked and suspended semiconductor channel material nanosheets, wherein the pFET S/D structure comprises a stack of, and from bottom to top, a first SiGe region having a first germanium content and a second SiGe region having a second germanium content greater than the first germanium content;

an n-type field effect transistor (nFET) device stacked vertically above the pFET device and comprising a second functional gate structure present on physically exposed surfaces, and between, each semiconductor channel material nanosheet of a second set of vertically stacked and suspended semiconductor channel material nanosheets, and an nFET S/D region is present on each side of the second set of vertically stacked and suspended semiconductor channel material nanosheets and located above each pFET S/D structure:

a silicon dioxide layer present between the pFET S/D structure and the nFET S/D region, wherein the silicon dioxide layer has a topmost surface directly contacting a bottommost surface of the nFET S/D region, a bottommost surface directly contacting a topmost surface of the pFET S/D structure, and sidewalls that a vertically aligned with sidewalls of the pFET S/D structure and sidewalls of the nFET S/D region; and

a shared S/D contact structure located on a first side of the vertically stacked nFET and pFET device, wherein said shared S/D contact structure passes entirely through each of the nFET S/D region, the silicon dioxide layer and the second SiGe region of the pFET S/D structure, and only partially into the first SiGe region of the pFET S/D structure.

2. The semiconductor structure of claim 1 , wherein each of the first and second functional gate structures comprises a same work function metal-containing material.

3. The semiconductor structure of claim 1 , wherein the first functional gate structure comprises a p-type work function metal-containing material and the second functional gate structure comprises an n-type work function metal-containing material.

4. The semiconductor structure of claim 1 , wherein sidewalls of the first and second functional gate structures contact sidewalls of an inner spacer.

5. The semiconductor structure of claim 1 , further comprising a dielectric isolation layer located beneath the pFET device and on a surface of a semiconductor substrate.

6. The semiconductor structure of claim 1 , wherein the first germanium content is from 50 atomic percent germanium to 60 atomic percent atomic percent germanium, and the second germanium content is from 55 atomic percent germanium to 75 atomic percent germanium.

7. The semiconductor structure of claim 1 , wherein each semiconductor channel material nanosheet of the first and second sets of vertically stacked and suspended semiconductor channel material nanosheets is composed of a same semiconductor material.

8. The semiconductor structure of claim 7 , wherein each semiconductor channel material nanosheet of the first and second sets of vertically stacked and suspended semiconductor channel material nanosheets is composed of silicon or a III-V compound semiconductor.

9. The semiconductor structure of claim 1 , wherein the first SiGe region and the second SiGe region comprise silicon germanium and a p-type dopant.

10. The semiconductor structure of claim 1 , further comprising an nFET S/D contact structure and a pFET S/D contact structure located on a second side of the vertically stacked nFET and pFET devices, opposite the first side, wherein the nFET S/D contact is present in the nFET S/D region and the pFET contact structure is present in the pFET S/D structure.

11. The semiconductor structure of claim 10 , wherein the nFET S/D contact structure is separated from the pFET S/D contact structure by a dielectric material.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 2, 2017
From: ZHANG, JINGYUN; ANDO, TAKASHI; HASHEMI, POUYA; LEE, CHOONGHYUN; REZNICEK, ALEXANDER
To: INTERNATIONAL BUSINESS MACHINES CORPORATION
Reel/Frame 044022/0196 →
Continuity (1)
Related Publication 20190131396A1 · May 2, 2019
Cited By (9)
US 12,191,208 US 12,237,330 US 12,237,333 US 12,250,835 US 12,278,285 US 12,389,584 US 12,402,352 US 12,526,994 US 12,615,818