IP Library Granted Patent US 12,614,577
Granted Patent B2
US 12,614,577 · App. 18/407,797 · Granted Apr 28, 2026

Nonvolatile memory device, storage device having the same, and operating method thereof

Inventors: Siyeon Cho (Suwon-si, KR); Daewon Ha (Suwon-si, KR); Myunghun Woo (Suwon-si, KR)
Assignee: Samsung Electronics Co., Ltd.
G11C11/2275G11C11/223G11C11/2277
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Quick Facts
Patent No.
US 12,614,577
App. No.
18/407,797
Granted
Apr 28, 2026
Kind
B2
Abstract

A method of operating a nonvolatile memory device includes applying a ground voltage to a selected wordline among the wordlines, applying an erase pass voltage to at least one unselected wordline among the wordlines, applying an erase voltage to a selected bitline among the bitlines, applying an erase prohibition voltage to an unselected bitline among the bitlines, and applying a Gate Induced Drain Leakage (GIDL) voltage to at least one string selection line corresponding to a string selected from among the plurality of strings.

Claims (50)

1 . A method of operating a nonvolatile memory device, the method comprising:

applying a ground voltage to a selected wordline among wordlines of the nonvolatile memory device, the nonvolatile memory device comprising a plurality of strings that extend in a direction perpendicular to a substrate and are electrically connected between respective bitlines and a common source line, each of the plurality of strings including at least one string selection transistor, a plurality of memory cells corresponding to the wordlines, and at least one ground selection transistor, and each of the plurality of memory cells comprising a ferroelectric material, the at least one string selection transistor comprising:

a first string selection transistor having a first gate electrically connected to a first string selection line and a first drain electrically connected to a respective bitline among the bitlines, and

a second string selection transistor having a second gate electrically connected to a second string selection line, a second drain electrically connected to a first source of the first string selection transistor, and a second source electrically connected to a respective memory cell among the plurality of memory cells;

applying an erase pass voltage to at least one unselected wordline among the wordlines;

applying an erase voltage, which is greater than the erase pass voltage, to a selected bitline among the bitlines;

applying an erase prohibition voltage, which is less than the erase pass voltage, to an unselected bitline among the bitlines; and

applying a Gate Induced Drain Leakage (GIDL) voltage to at least one string selection line corresponding to a selected string among the plurality of strings,

wherein in an erase operation of at least one memory cell, among the plurality of memory cells, which is electrically connected to the selected wordline and the selected bitline, a first shut-off voltage is applied to the first string selection line corresponding to an unselected string, among the plurality of strings, which is electrically connected to the selected bitline, and a second shut-off voltage is applied to the second string selection line corresponding to the unselected string, wherein the second shut-off voltage is different from the first shut-off voltage.

2 . The method of claim 1 , wherein the plurality of memory cells respectively comprise the ferroelectric material in combination with an insulator or a channel material.

3 . The method of claim 1 , wherein a pad of each of the bitlines comprises a hollow and at least partially cylindrical structure.

4 . The method of claim 1 , wherein each of the plurality of strings comprises a channel electrically connected to the common source line,

wherein the channel includes an oxide semiconductor layer and a silicon semiconductor layer, and

wherein a thickness of the oxide semiconductor layer is less than a thickness of the silicon semiconductor layer in the direction perpendicular to the substrate.

5 . The method of claim 1 ,

wherein a pad between the respective bitline and the first string selection transistor has an n-type dopant concentration that is higher than an n-type dopant concentration of a channel.

6 . The method of claim 5 , wherein in the erase operation the GIDL voltage is applied to the first string selection line and the second string selection line corresponding to the selected string.

7 . The method of claim 6 , wherein in the erase operation, the GIDL voltage is applied to the first string selection line and the second string selection line, and the first and second string selection lines are electrically connected to respective selection transistors of an adjacent string, among the plurality of strings, which is electrically connected to the unselected bitline.

8 . The method of claim 6 , wherein the second shut-off voltage is lower than the first shut-off voltage.

9 . The method of claim 1 , wherein an erase operation of each of the plurality of memory cells is performed in a unit of one of a cell, a string, or a plane, among the plurality of memory cells, among the plurality of strings, or among a plurality of planes, respectively, of the nonvolatile memory device, and wherein the erase voltage is 12 V or less.

10 . A nonvolatile memory device comprising:

a first string electrically connected between a first bitline and a common source line;

a second string electrically connected between a second bitline and the common source line;

a third string electrically connected between the first bitline and the common source line; and

a fourth string electrically connected between the second bitline and the common source line,

wherein each of the first, second, third, and fourth strings comprises a first string selection transistor having a gate electrically connected to a first string selection line, a second string selection transistor having a gate electrically connected to a second string selection line, a plurality of memory cells having respective gates electrically connected to respective ones of a plurality of wordlines, and a ground selection transistor having a gate electrically connected to a ground selection line, and each of the plurality of memory cells comprises a ferroelectric material,

wherein the first string selection line, the second string selection line, the plurality of wordlines, and the ground selection line are sequentially arranged in a direction perpendicular to a substrate,

wherein the nonvolatile memory device is configured to perform an erase operation in which, based on an address, the first string electrically connected to the first bitline is selected, and the second, third, and fourth strings are unselected,

wherein, the erase operation is configured such that, a Gate Induced Drain Leakage (GIDL) voltage is applied to the first string selection line and the second string selection line corresponding to the first string and the second string respectively, and

wherein, the erase operation is configured such that, different shut-off voltages are applied to the first string selection line and the second string selection line corresponding to the third string and the fourth string, respectively.

11 . The nonvolatile memory device of claim 10 , wherein the erase operation is configured such that, a ground voltage is applied to a wordline selected from among the plurality of wordlines, an erase voltage is applied to the first bitline, an erase prohibition voltage is applied to the second bitline, and the common source line is electrically floated.

12 . The nonvolatile memory device of claim 10 , wherein the erase operation is configured such that, a wordline pass voltage is applied to an unselected wordline among the plurality of wordlines, and the ground selection line is electrically floated.

13 . The nonvolatile memory device of claim 10 , wherein the erase operation is configured to be performed on a cell unit, a string unit, or a plane unit, among the plurality of memory cells, among the first, second, third, and fourth strings, or among a plurality of planes, respectively, of the nonvolatile memory device.

14 . The nonvolatile memory device of claim 10 , wherein a direction of collecting a threshold voltage distribution of the erase operation is opposite to a direction of collecting a threshold voltage distribution of a program operation of the nonvolatile memory device.

15 . A method of operating a nonvolatile memory device, the method comprising:

performing a program operation on a selected memory cell from among a plurality of memory cells of a respective string among a plurality of strings of the nonvolatile memory device using Incremental Step Pulse Programming (ISPP), wherein the plurality of strings extend in a direction perpendicular to a substrate, and are electrically connected between respective bitlines and a common source line, each of the plurality of strings including at least one string selection transistor, a plurality of memory cells corresponding to wordlines, and at least one ground selection transistor, each of the plurality of memory cells comprising a ferroelectric material, the at least one string selection transistor comprising:

a first string selection transistor having a first gate electrically connected to a first string selection line and a first drain electrically connected to a respective bitline among the bitlines, and

a second string selection transistor having a second gate electrically connected to a second string selection line, a second drain electrically connected to a first source of the first string selection transistor, and a second source electrically connected to a respective memory cell among the plurality of memory cells; and

performing an erase operation on the selected memory cell using Gate Induced Drain Leakage (GIDL), wherein the performing of the erase operation comprises applying different shut-off voltages to first and second string selection lines corresponding to unselected strings among the plurality of strings.

16 . The method of claim 15 , wherein the performing of the program operation comprises:

applying an incremental program pulse to one of the wordlines corresponding to the selected memory cell during the program operation;

verifying a program state of the selected memory cell; and

inhibiting programming when the program operation of the selected memory cell is completed.

17 . The method of claim 15 , wherein the erase operation is performed on a unit of a cell, string, or plane, among the plurality of memory cells, among the plurality of strings, or among a plurality of planes, respectively, of the nonvolatile memory device.

18 . The method of claim 15 , wherein the performing of the erase operation comprises:

applying a GIDL voltage to the first and second string selection lines corresponding to a string selected from among the plurality of strings.

19 . The method of claim 15 , wherein a pad of each of the bitlines comprises a hollow and at least partially cylindrical structure.

20 . The method of claim 15 , wherein each of the plurality of strings comprises a channel electrically connected to the common source line,

wherein the channel includes an oxide semiconductor layer and a silicon semiconductor layer, and

wherein a thickness of the oxide semiconductor layer is less than a thickness of the silicon semiconductor layer in the direction perpendicular to the substrate.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 10, 2024
From: CHO, SIYEON; HA, DAEWON; WOO, MYUNGHUN
To: SAMSUNG ELECTRONICS CO., LTD.
Reel/Frame 066074/0960 →
Priority Claims (1)
KR 10-2023-0093012 · Jul 18, 2023 · national
Continuity (1)
Related Publication 20250029647A1 · Jan 23, 2025
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