IP Library › Granted Patent US 11,258,435
Granted Patent B2
US 11,258,435 · App. 17/073,964 · Granted Feb 22, 2022

Output driving circuit

Inventor: Gyu Nam Kim (Icheon, KR)
Assignee: SK hynix Inc.
H03K3/356113H03K19/00315
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Quick Facts
Patent No.
US 11,258,435
App. No.
17/073,964
Granted
Feb 22, 2022
Kind
B2
Abstract

An output driving circuit includes a pull-down driver and a voltage stabilizer. The pull-down driver includes first, second, and third transistors connected in series between a pad and a ground node. The voltage stabilizer generates a stabilization voltage based on a voltage of the pad and a power voltage, and outputs the stabilization voltage to a control terminal of the second transistor.

Claims (34)

1. An output driving circuit comprising:

a pull-down driver including first, second, and third transistors connected in series between a pad and a ground node; and

a voltage stabilizer configured to generate a stabilization voltage based on a voltage of the pad and a power voltage, and output the stabilization voltage to a control terminal of the second transistor,

wherein, when the voltage of the pad has a first value and the power voltage has a second value less than the first value, the voltage stabilizer divides the voltage of the pad and generates the stabilization voltage based on the divided voltage of the pad, and

wherein the voltage stabilizer comprises a fourth transistor and a fifth transistor connected in series between the power voltage and a first internal node outputting the divided voltage, the fourth transistor and the fifth transistor being connected at a second internal node, and the voltage stabilizer outputs a voltage of the second internal node as the stabilization voltage.

2. The output driving circuit of claim 1 , wherein a value of the stabilization voltage is sufficient to make a difference between a voltage at an end terminal of the second transistor and a voltage at the control terminal of the second transistor equal to or less than a given value.

3. The output driving circuit of claim 1 , wherein the second value corresponds to a ground voltage, and a value of the stabilization voltage is less than the first value and greater than the second value.

4. The output driving circuit of claim 3 , wherein the first value is greater than 1.8V.

5. The output driving circuit of claim 3 , wherein the first value is greater than 1.8V and less than 3.3V.

6. The output driving circuit of claim 1 , wherein the voltage stabilizer comprises:

a voltage divider connected between the pad and a ground, the voltage divider being configured to divide the voltage of the pad and to output the divided voltage to the first internal node; and

a stabilization voltage generator connected between the power voltage and the first internal node, the stabilization voltage generator being configured to output the stabilization voltage based on the power voltage.

7. The output driving circuit of claim 6 , wherein the voltage divider comprises:

at least one first diode connected between the pad and the first internal node; and

at least one second diode connected between the first internal node and the ground.

8. The output driving circuit of claim 7 , wherein the number of the first diodes and the number of the second diodes are the same.

9. The output driving circuit of claim 7 , wherein the voltage divider further comprises a capacitor connected between the first internal node and the ground.

10. The output driving circuit of claim 1 , wherein:

the fourth transistor is adjacent to the power voltage, and the fifth transistor is adjacent to the first internal node;

the fifth transistor is a PMOS transistor; and

a gate terminal of the fifth transistor is connected to the power voltage.

11. The output driving circuit of claim 10 , wherein the fourth transistor is a PMOS transistor, and a gate terminal of the fourth transistor is connected to the first internal node.

12. The output driving circuit of claim 10 , wherein the stabilization voltage generator further comprises a sixth transistor connected between the power voltage and the second internal node.

13. The output driving circuit of claim 12 , wherein the sixth transistor is an NMOS transistor, and a gate terminal of the sixth transistor is connected to the power voltage.

14. The output driving circuit of claim 10 , wherein the fourth transistor is an NMOS transistor, and a gate terminal of the fourth transistor is connected to the power voltage.

15. The output driving circuit of claim 1 , wherein, when the power voltage has a third value greater than the second value and less than the first value, the voltage stabilizer outputs the power voltage as the stabilization voltage.

16. The output driving circuit of claim 15 , wherein the third value of the power voltage is less than 1.98V.

17. The output driving circuit of claim 1 , further comprising:

an input/output control logic configured to receive a clock signal and an enable signal and output a first control signal to the third transistor; and

a gate control logic configured to receive the voltage of the pad and output a feedback voltage to a gate terminal of the first transistor.

18. The output driving circuit of claim 17 , further comprising:

an inverter configured to invert the enable signal and output the inverted enable signal to the gate control logic; and

an internal resistor having a first end connected to the pad and a second end connected to the gate control logic.

19. The output driving circuit of claim 18 , wherein the first, second, and third transistors included in the pull-down driver are NMOS transistors.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 20, 2020
From: KIM, GYU NAM
To: SK HYNIX INC.
Reel/Frame 054108/0294 →
Priority Claims (1)
KR 10-2020-0060001 · May 19, 2020 · national
Continuity (1)
Related Publication 20210367586A1 · Nov 25, 2021
Cited By (2)
US 12,556,183 US 12,700,860