IP Library Granted Patent US 8,829,644
Granted Patent B2
US 8,829,644 · App. 14/072,250 · Granted Sep 9, 2014

Nonvolatile memory device and method of manufacturing the same

Inventors: Jae-Hwang Sim (Seoul, KR); Keon-Soo Kim (Hwaseong-si, KR); Kyung-Hoon Min (Seoul, KR); Min-Sung Song (Hwaseong-si, KR); Yeon-Wook Jung (Seoul, KR)
Assignee: Samsung Electronics Co., Ltd.
H01L29/788H01L29/7881H01L27/11521H01L21/28273H01L29/66825
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Quick Facts
Patent No.
US 8,829,644
App. No.
14/072,250
Filed
Nov 5, 2013
Granted
Sep 9, 2014
Kind
B2
Art Unit
2812
USPC
257/510
Abstract

In a non-volatile memory device and method of manufacturing the same, a device isolation pattern and an active region extend in a first direction on a substrate. A first dielectric pattern is formed on the active region of the substrate. Conductive stack structures are arranged on the first dielectric pattern and a recess is formed between a pair of the adjacent conductive stack structures. A protection layer is formed on a sidewall of the stack structure to protect the sidewall of the stack structure from over-etching along the first direction. The protection layer includes an etch-proof layer having oxide and arranged on a sidewall of the floating gate electrode and a sidewall of the control gate line and a spacer layer covering the sidewall of the conductive stack structures.

Claims (16)

1. A non-volatile memory device, comprising:

a semiconductor substrate having a field region on which a device isolation pattern is arranged, and an active region defined by the device isolation pattern and extending in a first direction;

a first dielectric pattern on the active region of the semiconductor substrate;

a plurality of conductive stack structures arranged on the first dielectric pattern and having a recess between a pair of the conductive stack structures adjacent to each other in a second direction substantially perpendicular to the first direction, wherein each of the plurality of conductive stack structures includes a floating gate electrode, a second dielectric pattern covering a surface of the floating gate electrode and the device isolation pattern in the recess and extending in the second direction, and a control gate line covering the second dielectric pattern and extending in the second direction; and

a protection layer on a sidewall of the plurality of conductive stack structures to protect the sidewall of the plurality of conductive stack structures from over-etching along the first direction, wherein the protection layer includes an etch-proof layer having an oxide and arranged on a sidewall of the floating gate electrode and a sidewall of the control gate line, and a spacer layer covering the sidewall of the plurality of conductive stack structures.

2. The non-volatile memory device of claim 1 , wherein the etch-proof layer is arranged on an entire sidewall of the control gate line and an upper sidewall of the floating gate electrode.

3. The non-volatile memory device of claim 2 , wherein the floating gate electrode and the control gate line includes polysilicon, and the second dielectric pattern includes a multi-layer pattern in which a first oxide layer, a nitride layer and a second oxide layer are sequentially stacked.

4. The non-volatile memory device of claim 2 , wherein the etch-proof layer has a thickness of about 2 nm to about 3 nm, and the spacer layer has a thickness of about 7 nm to about 10 nm.

5. The non-volatile memory device of claim 1 , wherein the etch-proof layer includes a plasma oxide layer, and the spacer layer includes a deposition oxide layer.

6. A non-volatile memory device, comprising:

a device isolation pattern on a field region of a semiconductor substrate;

a first dielectric pattern on an active region of the semiconductor substrate, the active region extending a first direction;

a plurality of conductive stack structures on the first dielectric pattern, wherein each of the plurality of conductive stack structures extends in a second direction substantially perpendicular to the first direction, and adjacent conductive stack structures of the plurality of conductive stack structures are separated from each other along the second direction; and

a protection layer on a sidewall of the plurality of conductive stack structures to protect the sidewall of the plurality of conductive stack structures along the first direction, wherein the protection layer includes an oxide layer arranged on a sidewall of the floating gate electrode and a sidewall of the control gate line, and a spacer covering the sidewall of the plurality of conductive stack structures,

wherein each of the plurality of conductive stack structures includes a floating gate electrode, a second dielectric pattern covering a surface of the floating gate electrode and the device isolation pattern in an area between the adjacent conductive stack structures, and a control gate line covering the second dielectric pattern, the second dielectric pattern and the control gate line both extending in the second direction.

7. The device of claim 6 , wherein a recess is between the adjacent conductive stack structures of the plurality of conductive stack structures.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 12, 2014
From: SIM, JAE-HWANG; KIM, KEON-SOO; MIN, KYUNG-HOON; SONG, MIN-SUNG; JUNG, YEON-WOOK
To: SAMSUNG ELECTRONICS CO., LTD.
Reel/Frame 032418/0254 →
Priority Claims (1)
KR 10-2010-0089823 · Sep 14, 2010 · national
Continuity (2)
Continuation 13230228 · Sep 12, 2011
Related Publication 20140061758A1 · Mar 6, 2014