IP Library Granted Patent US 12,660,155
Granted Patent B2
US 12,660,155 · App. 18/144,958 · Granted Jun 16, 2026

Method of manufacturing semiconductor memory devices

Inventors: Seokho Shin (Seoul, KR); Taegyu Kang (Hwaseong-si, KR); Byeungmoo Kang (Busan, KR); Joongchan Shin (Seoul, KR)
Assignee: SAMSUNG ELECTRONICS CO., LTD.
H10B12/30H10B12/03H10B12/05
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Quick Facts
Patent No.
US 12,660,155
App. No.
18/144,958
Granted
Jun 16, 2026
Kind
B2
Abstract

A semiconductor memory device including a substrate; a semiconductor pattern extending in a first horizontal direction on the substrate; bit lines extending in a second horizontal direction on the substrate perpendicular to the first horizontal direction, the bit lines being at a first end of the semiconductor pattern; word lines extending in a vertical direction on the substrate at a side of the semiconductor pattern; a capacitor structure on a second end of the semiconductor pattern opposite to the first end in the first horizontal direction, the capacitor structure including a lower electrode connected to the semiconductor pattern, an upper electrode spaced apart from the lower electrode, and a capacitor dielectric layer between the lower electrode and the upper electrode; and a capacitor contact layer between the second end of the semiconductor pattern and the lower electrode and including a pair of convex surfaces in contact with the semiconductor pattern.

Claims (63)

1 . A method of manufacturing a semiconductor memory device, the method comprising:

forming a mold stack on a substrate, the mold stack including a plurality of sacrificial mold layers and a plurality of channel mold layers alternately disposed in a vertical direction;

removing a first portion of the mold stack to form a plurality of first openings extending in the vertical direction and to form a plurality of lower electrode sacrificial patterns, wherein opposite sidewalls of each lower electrode sacrificial pattern are defined by two adjacent first openings from the plurality of first openings and extend in a first horizontal direction parallel with a top surface of the substrate;

removing a portion of each sacrificial mold layer exposed at a sidewall of the plurality of first openings to form a plurality of second openings, wherein a top surface and a bottom surface of each lower electrode sacrificial pattern are exposed at the second openings;

forming a plurality of support layers in the plurality of second openings;

forming a plurality of source/drain regions in a portion of each channel mold layer adjacent to the plurality of lower electrode sacrificial patterns;

removing the plurality of lower electrode sacrificial patterns by performing a side recess process to the plurality of lower electrode sacrificial patterns exposed at a sidewall of the plurality of first openings to expose the plurality of source/drain regions; and

forming a plurality of lower electrodes at positions from which the plurality of lower electrode sacrificial patterns have been removed.

2 . The method of claim 1 , wherein:

the plurality of lower electrode sacrificial patterns vertically overlap the plurality of support layers, and

the plurality of lower electrode sacrificial patterns and the plurality of support layers are disposed alternately with each other in the vertical direction.

3 . The method of claim 1 , wherein:

each lower electrode sacrificial pattern has a first length in the first horizontal direction,

each lower electrode sacrificial pattern has a first width in a second horizontal direction parallel with the top surface of the substrate, and

a ratio of the first length to the first width is between about 5 and about 400.

4 . The method of claim 3 , wherein, during the side recess process:

the top surface and the bottom surface of each lower electrode sacrificial pattern are covered by the plurality of support layers, and

both of the opposite sidewalls of each lower electrode sacrificial pattern are exposed to an etching atmosphere over an entire length in the first horizontal direction.

5 . The method of claim 3 , wherein, during removing the plurality of lower electrode sacrificial patterns, a portion of each of the exposed plurality of source/drain regions is also removed to form a pair of recessed portions in each source/drain region.

6 . The method of claim 5 , wherein the pair of recessed portions are formed with mirror symmetry in relation to each other with respect to a center line of each source/drain region which extends in the first horizontal direction.

7 . The method of claim 1 , further comprising forming a barrier metal layer on a sidewall of each of the plurality of source/drain regions, prior to forming the plurality of lower electrodes.

8 . The method of claim 7 , wherein the barrier metal layer includes titanium, tantalum, cobalt, tungsten, titanium nitride, or tantalum nitride.

9 . The method of claim 7 , further comprising performing a heat treatment process on the barrier metal layer, prior to forming the plurality of lower electrodes.

10 . The method of claim 7 , wherein the barrier metal layer includes a pair of convex surfaces protruding toward the sidewall of each of the plurality of source/drain regions.

11 . The method of claim 1 , further comprising:

removing a second portion of the mold stack to form at least two third openings extending in the vertical direction and to form a plurality of semiconductor patterns, wherein opposite sidewalls of each semiconductor pattern are defined by two adjacent third openings and extend in the first horizontal direction; and

forming a bit line connected to an end of each semiconductor pattern and extending in the vertical direction.

12 . A method of manufacturing a semiconductor memory device, the method comprising:

forming a mold stack on a substrate, the mold stack including a plurality of sacrificial mold layers and a plurality of channel mold layers alternately disposed in a vertical direction;

removing a first portion of the mold stack to form a plurality of first openings extending in the vertical direction and to form a plurality of lower electrode sacrificial patterns, wherein opposite sidewalls of each lower electrode sacrificial pattern are defined by two adjacent first openings from the plurality of first openings and extend in a first horizontal direction parallel with a top surface of the substrate;

removing a portion of each sacrificial mold layer exposed at a sidewall of the plurality of first openings to form a plurality of second openings, wherein a top surface and a bottom surface of each lower electrode sacrificial pattern are exposed at the second openings;

forming a plurality of support layers in the plurality of second openings;

forming a plurality of source/drain regions in a portion of each channel mold layer adjacent to the plurality of lower electrode sacrificial patterns;

removing the plurality of lower electrode sacrificial patterns by performing a side recess process to the plurality of lower electrode sacrificial patterns exposed at a sidewall of the plurality of first openings to expose the plurality of source/drain regions, wherein each of the exposed plurality of source/drain regions includes a pair of recessed portions;

forming a barrier metal layer on a sidewall of the exposed plurality of source/drain regions; and

forming a plurality of lower electrodes at positions from which the plurality of lower electrode sacrificial patterns have been removed.

13 . The method of claim 12 , wherein the barrier metal layer is between the plurality of lower electrodes and the plurality of source/drain regions.

14 . The method of claim 12 , wherein the pair of recessed portions are formed with mirror symmetry in relation to each other with respect to a center line of each of the plurality of source/drain regions which extends in the first horizontal direction.

15 . The method of claim 13 , wherein:

each lower electrode sacrificial pattern has a first length in the first horizontal direction,

each lower electrode sacrificial pattern has a first width in a second horizontal direction parallel with the top surface of the substrate, and

a ratio of the first length to the first width is between about 5 and about 400.

16 . The method of claim 15 , wherein, during the side recess process:

the top surface and the bottom surface of each lower electrode sacrificial pattern are covered by the plurality of support layers, and

both opposite sidewalls of each lower electrode sacrificial pattern are exposed to an etching atmosphere over an entire length in the first horizontal direction.

17 . The method of claim 13 , wherein:

the barrier metal layer includes a pair of convex surfaces protruding toward the sidewall of each of the plurality of source/drain regions, and

the pair of convex surfaces conform to a shape of the pair of recessed portions.

18 . A method of manufacturing a semiconductor memory device, the method comprising:

forming a mold stack on a substrate, the mold stack including a plurality of sacrificial mold layers and a plurality of channel mold layers alternately disposed in a vertical direction;

removing a first portion of the mold stack to form a plurality of first openings extending in the vertical direction and to form a plurality of lower electrode sacrificial patterns, wherein opposite sidewalls of each lower electrode sacrificial pattern are defined by two adjacent first openings from the plurality of first openings and extend in a first horizontal direction parallel with a top surface of the substrate;

removing a portion of each sacrificial mold layer exposed at a sidewall of the plurality of first openings to form a plurality of second openings, wherein a top surface and a bottom surface of each lower electrode sacrificial pattern are exposed at the second openings;

forming a plurality of support layers in the plurality of second openings;

forming a plurality of source/drain regions in a portion of each channel mold layer adjacent to the plurality of lower electrode sacrificial patterns;

removing the plurality of lower electrode sacrificial patterns exposed at sidewalls of the plurality of first openings to expose opposite sidewalls of each of the plurality of source/drain regions;

forming a barrier metal layer on the opposite sidewalls of each of the plurality of source/drain regions, wherein the barrier metal layer has a pair of convex surfaces protruding toward the sidewall of each of the plurality of source/drain regions; and

forming a plurality of lower electrodes at positions from which the plurality of lower electrode sacrificial patterns have been removed.

19 . The method of claim 18 , further comprising:

removing a second portion of the mold stack to form at least two third openings extending in the vertical direction and to form a plurality of semiconductor patterns, wherein opposite sidewalls of each semiconductor pattern are defined by two adjacent third openings and extend in the first horizontal direction; and

forming a bit line connected to an end of each semiconductor pattern and extending in the vertical direction.

20 . The method of claim 18 , wherein, during removing the plurality of lower electrode sacrificial patterns:

the top surface and the bottom surface of each lower electrode sacrificial pattern are covered by the plurality of support layers, and

both opposite sidewalls of each lower electrode sacrificial pattern are exposed to an etching atmosphere over an entire length in the first horizontal direction.

Priority Claims (1)
KR 10-2020-0117044 · Sep 11, 2020 · national
Continuity (2)
Continuation 17471778 · Sep 10, 2021
Related Publication 20230276614A1 · Aug 31, 2023
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