IP Library › Granted Patent US 12,733,220
Granted Patent B2
US 12,733,220 · App. 17/861,960 · Granted Sep 8, 2026

Nanosheet transistor device with bottom isolation

Inventors: Ruilong Xie (Niskayuna, NY); Veeraraghavan S. Basker (Fremont, CA); Andrew M. Greene (Slingerlands, NY); Pietro Montanini (Albany, NY)
Assignee: International Business Machines Corporation
H10D62/118H10D30/0243H10D30/62H10D64/017H10P14/3411H10P14/3461H10P14/6927
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Quick Facts
Patent No.
US 12,733,220
App. No.
17/861,960
Granted
Sep 8, 2026
Kind
B2
Abstract

A method of forming a nanosheet transistor device is provided. The method includes forming a segment stack of alternating intermediate sacrificial segments and nanosheet segments on a bottom sacrificial segment, wherein the segment stack is on a mesa and a nanosheet template in on the segment stack. The method further includes removing the bottom sacrificial layer to form a conduit, and forming a fill layer in the conduit and encapsulating at least a portion of the segment stack.

Claims (28)

1 . A nanosheet transistor device, comprising:

a fill layer section on a top surface and at least a portion of opposite sidewalls of a mesa, wherein the mesa is on a substrate;

one or more nanosheet plates above the fill layer section, wherein the fill layer section is beneath at least a portion of the one or more nanosheet plates and extends from a first side of the one or more nanosheet plates to a second side of the one or more nanosheet plates opposite the first side; and

a stack liner section on a portion of opposite sidewalls of the mesa below the fill layer section, wherein the stack liner section separates a gauge block from the substrate.

2 . The nanosheet transistor device of claim 1 , further comprising a spacer layer section on the stack liner section, wherein the fill layer section is on the stack liner section and the spacer layer section.

3 . The nanosheet transistor device of claim 2 , wherein the gauge block is on the spacer layer section.

4 . The nanosheet transistor device of claim 3 , wherein a top surface of the gauge block is above a top surface of the fill layer section on the mesa.

5 . The nanosheet transistor device of claim 4 , further comprising a gate dielectric layer on a top surface of the fill layer section, a top surface of the gauge block, and a portion of a sidewall surface of the gauge block.

6 . The nanosheet transistor device of claim 3 , wherein the fill layer section is a dielectric material selected from the group consisting of a low-k dielectric material, silicon nitride (SiN), silicon oxy carbonitride (SiOCN), and combinations thereof.

7 . The nanosheet transistor device of claim 5 , wherein the gate dielectric layer is a dielectric material selected from the group consisting of silicon oxide (SiO), a high-k dielectric, and combinations thereof.

8 . The nanosheet transistor device of claim 7 , wherein the stack liner section is a dielectric material selected from the group consisting of silicon oxide (SiO), silicon oxynitride (SiON), and combinations thereof.

9 . A nanosheet transistor device, comprising:

a fill layer section on a top surface and at least a portion of opposite sidewalls of a mesa, wherein the mesa is on a substrate;

one or more nanosheet plates above the fill layer section, wherein the fill layer section is beneath at least a portion of the one or more nanosheet plates and extends from a first side of the one or more nanosheet plates to a second side of the one or more nanosheet plates opposite the first side;

a gate dielectric layer on the fill layer section and each of the one or more nanosheet plates; and

a stack liner section on a portion of opposite sidewalls of the mesa below the fill layer section, wherein the stack liner section separates a gauge block from the substrate.

10 . The nanosheet transistor device of claim 9 , wherein the fill layer section has a thickness in a range of about 4 nanometers (nm) to about 15 nm.

11 . The nanosheet transistor device of claim 10 , wherein the gauge block is in direct contact with a portion of the fill layer section.

12 . The nanosheet transistor device of claim 9 , further comprising a spacer layer section on the stack liner section, wherein the spacer layer section separates the gauge block from the stack liner section and the mesa.

13 . A nanosheet transistor device, comprising:

a fill layer section on a mesa, wherein the mesa is on a substrate;

one or more nanosheet plates above the fill layer section, wherein a cross-section of the fill layer section has an upside-down U-shape underneath the one or more nanosheet plates and an H-shape between a first gate structure and a second gate structure;

a gate dielectric layer on the fill layer section and each of the one or more nanosheet plates; and

a stack liner section on a portion of opposite sidewalls of the mesa below the fill layer section, wherein the stack liner section separates a gauge block from the substrate.

14 . The nanosheet transistor device of claim 13 , wherein the fill layer section is a dielectric material selected from the group consisting of silicon nitride (SIN), silicon oxy carbonitride (SIOCN), and combinations thereof.

15 . The nanosheet transistor device of claim 14 , further comprising a conductive gate electrode between the fill layer section and a bottom most nanosheet plate of the one or more nanosheet plates.

16 . The nanosheet transistor device of claim 15 , wherein the gauge block is adjacent to the fill layer section.

17 . The nanosheet transistor device of claim 16 , further comprising a spacer layer section between the gauge block and the stack liner section.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 11, 2022
From: XIE, RUILONG; BASKER, VEERARAGHAVAN S.; GREENE, ANDREW M.; MONTANINI, PIETRO
To: INTERNATIONAL BUSINESS MACHINES CORPORATION
Reel/Frame 060475/0896 →
Continuity (2)
Continuation 16567767 · Sep 11, 2019
Related Publication 20220367626A1 · Nov 17, 2022
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