IP Library › Granted Patent US 12,591,377
Granted Patent B2
US 12,591,377 · App. 17/216,292 · Granted Mar 31, 2026

Memory module capable of reducing power consumption and semiconductor system including the same

Inventor: Jung Hyun Kim (Hwaseong-si, KR)
Assignee: SK hynix Inc.
G06F3/0625G06F1/3275G06F1/3296G06F3/0634G06F3/0679G11C5/04G11C7/04G11C11/40G11C11/406G11C11/4074G11C5/148G11C11/40626Y02D10/00
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Quick Facts
Patent No.
US 12,591,377
App. No.
17/216,292
Granted
Mar 31, 2026
Kind
B2
Abstract

A memory module may include a power source, a memory device, and a power controller. The power source provides at least one power supply voltage. The memory device operates by being supplied with at least one memory power supply voltage. The power controller supplies the at least one memory power supply voltage by changing a voltage level of the at least one power supply voltage based on operation modes of the memory device.

Claims (36)

1 . A memory module comprising:

a memory device configured to operate by being applied with a first memory power supply voltage, and configured to perform a refresh operation when a refresh signal is received;

a voltage gating circuit configured to provide a first power supply voltage supplied from a power source, as the first memory power supply voltage, when a gating signal is an enabled state;

a voltage sensing circuit configured to generate a sensing signal when a level of the first memory power supply voltage is greater than or equal to a predetermined level; and

a power control circuit configured to generate the gating signal based on a command signal, and generate the refresh signal based on the command signal and the sensing signal.

2 . The memory module according to claim 1 , wherein the voltage gating circuit supplies one of the first power supply voltage and a low voltage as the first memory power supply voltage based on the gating signal, and the low voltage has a lower level than the first power supply voltage.

3 . The memory module according to claim 1 , wherein the memory device operates by being additionally applied with a second memory power supply voltage, the power source provides a second power supply voltage as the second memory power supply voltage, and the second power supply voltage has a lower level than the first power supply voltage.

4 . The memory module according to claim 1 , wherein the power control circuit is configured to enable the gating signal in the refresh operation of the memory device during a standby operation.

5 . The memory module according to claim 4 , wherein the standby operation includes at least one operation mode among a power-down mode, a deep power-down mode, or a sleep mode.

6 . The memory module according to claim 4 , wherein, during the standby operation, an internal circuit that performs the refresh operation of the memory device is activated.

7 . The memory module according to claim 4 , wherein, during the standby operation, an internal circuit that performs the refresh operation of the memory device is activated when the command signal is associated with the refresh operation.

8 . The memory module according to claim 4 , wherein, during the standby operation, the memory device is configured to perform the refresh operation when the command signal is associated with the refresh operation.

9 . The memory module according to claim 4 , wherein the power control circuit is configured to disable the gating signal in the standby operation.

10 . The memory module according to claim 1 , wherein the memory module is coupled to a power management integrated circuit, the power management integrated circuit configured to generate and provide the first power supply voltage,

wherein the power management integrated circuit includes the power source.

11 . The memory module according to claim 1 , wherein the power control circuit is configured to generate the gating signal after the memory module receives the command signal from an exterior of the memory module.

12 . The memory module according to claim 1 , wherein the power control circuit is configured to generate the gating signal when the command signal is associated with a standby operation.

13 . A memory module comprising:

a memory device configured to operate by being applied with a first memory power supply voltage and a second memory power supply voltage;

a voltage gating circuit configured to provide a first power supply voltage supplied from a power source, as the first memory power supply voltage, when a gating signal is an enabled state;

a voltage sensing circuit configured to generate a sensing signal when a level of the first memory power supply voltage is greater than or equal to a predetermined level; and

a power control circuit configured to generate the gating signal based on a command signal, and generate a refresh signal based on the command signal and the sensing signal,

wherein the power source provides a second power supply voltage as the second memory power supply voltage, and the second power supply voltage has a lower level than the first power supply voltage and a higher level than a ground.

14 . The memory module according to claim 13 , wherein the voltage gating circuit supplies one of the first power supply voltage and a low voltage as the first memory power supply voltage based on the gating signal, and the low voltage has a lower level than the first power supply voltage.

15 . The memory module according to claim 13 , wherein the power control circuit is configured to enable the gating signal in the refresh operation of the memory device during a standby operation.

16 . The memory module according to claim 15 , wherein the standby operation includes at least one operation mode among a power-down mode, a deep power-down mode, or a sleep mode.

17 . The memory module according to claim 15 , wherein, during the standby operation, an internal circuit that performs the refresh operation of the memory device is activated.

18 . The memory module according to claim 15 , wherein, during the standby operation, an internal circuit that performs the refresh operation of the memory device is activated when the command signal is associated with the refresh operation.

19 . The memory module according to claim 15 , wherein, during the standby operation, the memory device is configured to perform the refresh operation when the command signal is associated with the refresh operation.

20 . The memory module according to claim 15 , wherein the power control circuit is configured to disable the gating signal in the standby operation.

21 . The memory module according to claim 13 , wherein the memory module is coupled to a power management integrated circuit, the power management integrated circuit configured to generate and provide the first power supply voltage and the second power supply voltage,

wherein the power management integrated circuit includes the power source.

22 . The memory module according to claim 13 , wherein the power control circuit is configured to generate the gating signal after the memory module receives the command signal from an exterior of the memory module.

23 . The memory module according to claim 13 , wherein the power control circuit is configured to generate the gating signal when the command signal is associated with a standby operation.

24 . The memory module according to claim 13 , wherein the command signal is received from an exterior of the memory module.

25 . The memory module according to claim 13 , wherein the power control circuit is configured to enable the gating signal when the command signal is associated with a standby operation.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 29, 2021
From: KIM, JUNG HYUN
To: SK HYNIX INC.
Reel/Frame 055757/0993 →
Priority Claims (2)
KR 10-2017-0026345 · Feb 28, 2017 · national
KR 10-2017-0026358 · Feb 28, 2017 · national
Continuity (2)
Division 15884693 · Jan 31, 2018
Related Publication 20210216224A1 · Jul 15, 2021
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