IP Library › Granted Patent US 12,609,156
Granted Patent B2
US 12,609,156 · App. 18/461,550 · Granted Apr 21, 2026

Memory device and method for calibrating impedance of input-output circuit thereof

Inventor: Hae Young Chung (Suwon-si, KR)
Assignee: Samsung Electronics Co., Ltd.
G11C11/4096G11C11/4093G11C2207/2245
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Quick Facts
Patent No.
US 12,609,156
App. No.
18/461,550
Granted
Apr 21, 2026
Kind
B2
Abstract

Disclosed is a memory device, which comprises a memory cell array that includes a plurality of memory cells; an input/output circuit configured to transmit data received from an outside (e.g., an external source) through a data pad to the memory cell array or transmit data read from the memory cell array to the external source; and an impedance calibration circuit configured to generate an impedance calibration code that is applied to the input/output circuit. The impedance calibration circuit is further configured to divide a total impedance calibration section into a plurality of sub-impedance calibration sections, and perform at least one sub-impedance calibration in each of the plurality of sub-impedance calibration sections, the at least one sub-impedance calibration corresponding to at least one of a plurality of impedance modes.

Claims (58)

1 . A memory device comprising:

a memory cell array that includes a plurality of memory cells;

an input/output circuit configured to transmit data received from an external source through a data pad to the memory cell array or transmit data read from the memory cell array to the external source; and

an impedance calibration circuit configured to generate an impedance calibration code that is applied to the input/output circuit,

wherein the impedance calibration circuit is further configured to:

perform a first sub-impedance calibration corresponding to a first impedance mode in a first sub-impedance calibration section, wherein the first impedance mode corresponds to a read operation;

in response to detecting a change from the first impedance mode to a second impedance mode, perform a second sub-impedance calibration corresponding to the second impedance mode in a second sub-impedance calibration section, wherein the second impedance mode corresponds to a write operation.

2 . The memory device of claim 1 ,

wherein the impedance calibration circuit is further configured to:

generate a first impedance calibration code corresponding to the first impedance mode in the first sub-impedance calibration section; and

generate a second impedance calibration code corresponding to the second impedance mode in the second sub-impedance calibration section.

3 . The memory device of claim 2 , wherein the impedance calibration circuit is configured to generate a third impedance calibration code corresponding to the first impedance mode in the second sub-impedance calibration section.

4 . The memory device of claim 3 , wherein the first impedance calibration code and the second impedance calibration code are used in a pull-up driver of the input/output circuit, and the third impedance calibration code is used in a pull-down driver of the input/output circuit.

5 . The memory device of claim 3 , wherein the impedance calibration circuit comprises:

a first part including a pull-up driver; and

a second part including a pull-down driver, and

wherein the first part is configured to generate the first impedance calibration code and the second impedance calibration code, and the second part is configured to generate the third impedance calibration code.

6 . The memory device of claim 5 , wherein the impedance calibration circuit is configured to generate the first impedance calibration code in the first sub-impedance calibration section by activating the first part and inactivating the second part.

7 . The memory device of claim 5 , wherein, in the second sub-impedance calibration section, the impedance calibration circuit is configured to:

generate the second impedance calibration code through the first part; and

generate the third impedance calibration code through the second part.

8 . A memory device comprising:

a memory cell array including a plurality of memory cells;

an input/output circuit configured to transmit data received from an outside through a data pad to the memory cell array or transmit data read from the memory cell array to the outside; and

an impedance calibration circuit configured to generate an impedance calibration code applied to the input/output circuit,

wherein the impedance calibration circuit is configured to:

perform a first sub-impedance calibration corresponding to a first impedance mode in a first sub-impedance calibration section, wherein the first impedance mode corresponds to a read operation; and

in response to detecting a change from the first impedance mode to a second impedance mode, perform a second sub-impedance calibration corresponding to the second impedance mode in a second sub-impedance calibration section, wherein the second impedance mode corresponds to a non-target read operation.

9 . The memory device of claim 8 , wherein the impedance calibration circuit is further configured to:

generate a first impedance calibration code corresponding to the first impedance mode in the first sub-impedance calibration section, and

generate a second impedance calibration code corresponding to the second impedance mode in the second sub-impedance calibration section.

10 . The memory device of claim 9 , wherein the impedance calibration circuit is configured to generate a third impedance calibration code corresponding to the first impedance mode in the second sub-impedance calibration section.

11 . The memory device of claim 10 , wherein the first impedance calibration code and the second impedance calibration code are used in a pull-up driver of the input/output circuit, and the third impedance calibration code is used in a pull-down driver of the input/output circuit.

12 . The memory device of claim 10 , wherein the impedance calibration circuit includes:

a first part including a pull-up driver; and

a second part including a pull-down driver,

wherein the first part generates the first impedance calibration code and the second impedance calibration code, and the second part generates the third impedance calibration code.

13 . The memory device of claim 12 , wherein the impedance calibration circuit is configured to generate the first impedance calibration code in the first sub-impedance calibration section by activating the first part and inactivating the second part.

14 . The memory device of claim 12 , wherein, in the second sub-impedance section, the impedance calibration circuit is configured to:

generate the second impedance calibration code through the first part, and

generate the third impedance calibration code through the second part.

15 . A memory device comprising:

a memory cell array including a plurality of memory cells;

an input/output circuit configured to transmit data received from an outside through a data pad to the memory cell array or transmit data read from the memory cell array to the outside; and

an impedance calibration circuit configured to generate an impedance calibration code applied to the input/output circuit,

wherein the impedance calibration circuit is configured to:

perform a first sub-impedance calibration corresponding to a first impedance mode in a first sub-impedance calibration section, wherein the first impedance mode corresponds to a write operation; and

in response to detecting a change from the first impedance mode to a second impedance mode, perform a second sub-impedance calibration corresponding to the second impedance mode in a second sub-impedance calibration section, wherein the second impedance mode corresponds to a non-target read operation.

16 . The memory device of claim 15 , wherein the impedance calibration circuit is further configured to:

generate a first impedance calibration code corresponding to the first impedance mode in the first sub-impedance calibration section, and

generate a second impedance calibration code corresponding to the second impedance mode in the second sub-impedance calibration section.

17 . The memory device of claim 16 , wherein the impedance calibration circuit is configured to generate a third impedance calibration code corresponding to the first impedance mode in the second sub-impedance calibration section.

18 . The memory device of claim 17 , wherein the first impedance calibration code and the second impedance calibration code are used in a pull-up driver of the input/output circuit, and the third impedance calibration code is used in a pull-down driver of the input/output circuit.

19 . The memory device of claim 17 , wherein the impedance calibration circuit includes:

a first part including a pull-up driver; and

a second part including a pull-down driver,

wherein the first part generates the first impedance calibration code and the second impedance calibration code, and the second part generates the third impedance calibration code.

20 . The memory device of claim 19 , wherein the impedance calibration circuit is configured to generate the first impedance calibration code in the first sub-impedance calibration section by activating the first part and inactivating the second part.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 13, 2023
From: CHUNG, HAE YOUNG
To: SAMSUNG ELECTRONICS CO., LTD.
Reel/Frame 064890/0492 →
Priority Claims (1)
KR 10-2023-0026656 · Feb 28, 2023 · national
Continuity (1)
Related Publication 20240290378A1 · Aug 29, 2024
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