IP Library › Granted Patent US 12,519,479
Granted Patent B2
US 12,519,479 · App. 18/496,244 · Granted Jan 6, 2026

Voltage-to-time converter circuit and semiconductor device including the same

Inventors: Changyeop Lee (Daejeon, KR); Seung-Tak Ryu (Daejeon, KR); Junho Cheon (Icheon-si, KR)
Assignees: SK hynix Inc.; Korea Advanced Institute of Science and Technology
H03M1/002
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Quick Facts
Patent No.
US 12,519,479
App. No.
18/496,244
Granted
Jan 6, 2026
Kind
B2
Abstract

A voltage-to-time converter (VTC) circuit includes an input capacitor being charged according to an input voltage during a precharge operation; an output capacitor being charged during the precharge operation; a first transistor configured to discharge the output capacitor according to a voltage charged in the input capacitor during a first operation following the precharge operation; and a second transistor configured to charge the output capacitor according to the voltage charged in the input capacitor during a second operation following the first operation.

Claims (43)

1 . A voltage-to-time converter (VTC) circuit comprising:

an input capacitor being charged according to an input voltage during a precharge operation;

an output capacitor being charged during the precharge operation;

a first transistor configured to discharge the output capacitor according to a voltage charged in the input capacitor during a first operation following the precharge operation;

a second transistor configured to charge the output capacitor according to the voltage charged in the input capacitor during a second operation following the first operation; and

a plurality of inverters configured to generate a time signal by buffering a voltage charged in the output capacitor, during the second operation.

2 . The VTC circuit of claim 1 , further comprising an inverter configured to output an extended time signal by buffering the voltage charged in the output capacitor.

3 . The VTC circuit of claim 1 , further comprising a third transistor configured to charge the output capacitor to a power supply voltage during the precharge operation.

4 . A voltage-to-time converter (VTC) circuit comprising:

an input capacitor being charged according to an input voltage during a precharge operation;

an output capacitor being discharged during the precharge operation;

a first transistor configured to charge the output capacitor according to a voltage charged in the input capacitor during a first operation following the precharge operation;

a second transistor configured to discharge the output capacitor according to the voltage charged in the input capacitor during a second operation following the first operation; and

a plurality of inverters configured to generate a time signal by buffering a voltage charged in the output capacitor, during the second operation.

5 . The VTC circuit of claim 4 , further comprising an inverter configured to output an extended time signal by buffering the voltage charged in the output capacitor.

6 . The VTC circuit of claim 4 , further comprising a third transistor configured to discharge the output capacitor during the precharge operation.

7 . A semiconductor device comprising:

a voltage-to-time converter (VTC) circuit array including a plurality of VTC circuits that perform a first operation and a second operation, generate a plurality of time signals whose phase change times are determined according to a plurality of input voltages, respectively, and generate a plurality of extended time signals according to the plurality of input voltages by performing the first operation;

a control circuit configured to control the first operation and the second operation and to determine a time to initiate the second operation according to the plurality of extended time signals; and

a deactivation circuit array including a plurality of deactivation circuits and configured to generate a plurality of output signals, wherein, among the plurality of output signals, an output signal corresponding to a time signal with the earliest phase change time is activated, while the remaining output signals are deactivated.

8 . The semiconductor device of claim 7 , wherein each of the plurality of VTC circuits includes:

an input capacitor being charged according to an input voltage during a precharge operation;

an output capacitor being charged during the precharge operation;

a first transistor configured to discharge the output capacitor according to a voltage charged in the input capacitor during the first operation following the precharge operation;

a second transistor configured to charge the output capacitor according to the voltage charged in the input capacitor during the second operation following the first operation;

a plurality of inverters configured to generate a time signal by buffering a voltage charged in the output capacitor, during the second operation; and

an inverter configured to output an extended time signal by buffering the voltage charged in the output capacitor.

9 . The semiconductor device of claim 8 , further comprising a third transistor configured to charge the output capacitor to a power supply voltage during the precharge operation.

10 . The semiconductor device of claim 7 , wherein each of the plurality of VTC circuits includes:

an input capacitor being charged according to an input voltage during a precharge operation;

an output capacitor being discharged during the precharge operation;

a first transistor configured to charge the output capacitor according to a voltage charged in the input capacitor during the first operation following the precharge operation;

a second transistor configured to discharge the output capacitor according to the voltage charged in the input capacitor during the second operation following the first operation;

a plurality of inverters configured to generate a time signal by buffering a voltage charged in the output capacitor, during the second operation; and

an inverter configured to output an extended time signal by buffering the voltage charged in the output capacitor.

11 . The semiconductor device of claim 10 , further comprising a third transistor configured to discharge the output capacitor during the precharge operation.

12 . The semiconductor device of claim 7 , wherein the control circuit terminates the first operation and starts the second operation when, among the plurality of extended time signals, a number of extended time signals whose phase are changed during the first operation is greater than or equal to a first predetermined number.

13 . The semiconductor device of claim 12 , wherein the control circuit terminates the second operation when, among the plurality of extended time signals, a number of extended time signals whose phase are changed during the second operation is greater than or equal to a second predetermined number.

14 . The semiconductor device of claim 7 , wherein each of the plurality of deactivation circuits generates an output signal by using a corresponding time signal and a plurality of intermediate output signals corresponding to a plurality of time signals except the corresponding time signal,

wherein each of the plurality of deactivation circuits includes:

a NAND gate configured to generate an intermediate output signal corresponding to the corresponding time signal; and

an inverter configured to generate the output signal by inverting the intermediate output signal,

wherein the NAND gate receives, as inputs, the corresponding time signal and the plurality of intermediate output signals.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 30, 2023
From: LEE, CHANGYEOP; RYU, SEUNG-TAK; CHEON, JUNHO
To: SK HYNIX INC.; KOREA ADVANCED INSTITUTE OF SCIENCE AND TECHNOLOGY
Reel/Frame 065388/0595 →
Priority Claims (1)
KR 10-2023-0065020 · May 19, 2023 · national
Continuity (1)
Related Publication 20240388300A1 · Nov 21, 2024
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