IP Library Granted Patent US 10,256,802
Granted Patent B1
US 10,256,802 · App. 15/616,872 · Granted Apr 9, 2019

Overvoltage protection circuit

Inventor: Bruno Miguel Vaz (Sao Domingos de Rana, PT)
Assignee: XILINX, INC.
H03K17/08122G01R19/165H03M1/12
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 10,256,802
App. No.
15/616,872
Granted
Apr 9, 2019
Kind
B1
Abstract

In an example, an input buffer includes: first buffer circuit having an output, a first voltage control node, and a second voltage control node; a first transistor having a gate coupled to the output of the first buffer circuit, a drain, and a source; a second buffer circuit having an input coupled to a reference voltage and an output coupled to the source of the first transistor; and a first current source having a reference output coupled to the drain of the first transistor, a first output coupled to the first voltage control node of the first buffer circuit, and a second output coupled to the second voltage control node of the second buffer circuit.

Claims (56)

1. An input buffer, comprising:

first buffer circuit having an output, a first voltage control node, and a second voltage control node;

a first transistor having a gate coupled to the output of the first buffer circuit, a drain, and a source;

a second buffer circuit having an input coupled to a reference voltage and an output coupled to the source of the first transistor; and

a first current source having a reference output coupled to the drain of the first transistor, a first output coupled to the first voltage control node of the first buffer circuit, and a second output coupled to the second voltage control node of the first buffer circuit.

2. The input buffer of claim 1 , wherein the first current source includes a third output, and wherein the input buffer further comprises:

a resistor coupled between electrical ground and the third output of the first current source; and

a voltage comparator having an input coupled to a node formed by the third output of the first current source and the resistor.

3. The input buffer of claim 1 , wherein the reference output of the first current source supplies a first reference current, the first output of the first current source supplies a first mirrored current, and the second output of the first current source supplies a second mirrored current, each of the first and second mirrored current being proportional to the first reference current.

4. The input buffer of claim 3 , wherein the first buffer circuit comprises:

a second transistor having a gate providing an input to the first buffer circuit, a source, and a drain;

a second current source having a reference output coupled to a third current source, a first output coupled to the drain of the second transistor, and a second output; and

a fourth current source having a reference input coupled to the second output of the second current source and an input coupled to the source of the second transistor;

wherein the reference output of the second current source is common with the first voltage control node and the second output of the second current source is common with the second voltage control node.

5. The input buffer of claim 4 , wherein second current source includes a thin-oxide transistor providing the first output, and wherein the fourth current source comprises a plurality of thin-oxide transistors.

6. The input buffer of claim 5 , wherein the first transistor comprises a thick-oxide transistor, and wherein the second current source includes thick-oxide transistors providing the reference output and the second output, respectively.

7. The input buffer of claim 6 , wherein each thick-oxide transistor has a higher maximum voltage across pairs of its terminals than each thin-oxide transistor.

8. The input buffer of claim 1 , wherein the second buffer circuit comprises:

a second transistor having a gate coupled to receive the reference voltage, a source providing the output coupled to the source of the first transistor, and a drain;

a third transistor having a gate coupled to receive a first bias voltage, a source coupled to a supply node, and a drain;

a fourth transistor having a source coupled to the drain of the third transistor, a gate coupled to receive a second bias voltage, and a drain;

a third current source having a reference input coupled to the drain of the fourth transistor and an input coupled to the drain of the second transistor.

9. The input buffer of claim 8 , wherein the third transistor comprises a thin-oxide transistor, and wherein the third current source includes a plurality of thin-oxide transistors.

10. An analog-to-digital converter (ADC), comprising:

ADC and control circuitry configured to sample an analog signal and generate a digital signal; and

an input buffer configured to receive a radio frequency (RF) signal and generate the analog signal, the input buffer including:

a first buffer circuit having an output, a first voltage control node, and a second voltage control node;

a first transistor having a gate coupled to the output of the first buffer circuit, a drain, and a source;

a second buffer circuit having an input coupled to a reference voltage and an output coupled to the source of the first transistor; and

a first current source having a reference output coupled to the drain of the first transistor, a first output coupled to the first voltage control node of the first buffer circuit, and a second output coupled to the second voltage control node of the first buffer circuit.

11. The ADC of claim 10 , wherein the first current source includes a third output, and wherein the input buffer further comprises:

a resistor coupled between electrical ground and the third output of the first current source; and

a voltage comparator having an input coupled to a node formed by the third output of the first current source and the resistor.

12. The ADC of claim 10 , wherein the reference output of the first current source supplies a first reference current, the first output of the first current source supplies a first mirrored current, and the second output of the first current source supplies a second mirrored current, each of the first and second mirrored current being proportional to the first reference current.

13. The ADC of claim 12 , wherein the first buffer circuit comprises:

a second transistor having a gate providing an input to the first buffer circuit, a source, and a drain;

a second current source having a reference output coupled to a third current source, a first output coupled to the drain of the second transistor, and a second output; and

a fourth current source having a reference input coupled to the second output of the second current source and an input coupled to the source of the second transistor;

wherein the reference output of the second current source is common with the first voltage control node and the second output of the second current source is common with the second voltage control node.

14. The ADC of claim 13 , wherein second current source includes a thin-oxide transistor providing the first output, and wherein the fourth current source comprises a plurality of thin-oxide transistors.

15. The ADC of claim 14 , wherein the first transistor comprises a thick-oxide transistor, and wherein the second current source includes thick-oxide transistors providing the reference output and the second output, respectively.

16. The ADC of claim 15 , wherein each thick-oxide transistor has a higher maximum voltage across pairs of its terminals than each thin-oxide transistor.

17. The ADC of claim 10 , wherein the second buffer circuit comprises:

a second transistor having a gate coupled to receive the reference voltage, a source providing the output coupled to the source of the first transistor, and a drain;

a third transistor having a gate coupled to receive a first bias voltage, a source coupled to a supply node, and a drain;

a fourth transistor having a source coupled to the drain of the third transistor, a gate coupled to receive a second bias voltage, and a drain;

a third current source having a reference input coupled to the drain of the fourth transistor and an input coupled to the drain of the second transistor.

18. The ADC of claim 17 , wherein the third transistor comprises a thin-oxide transistor, and wherein the third current source includes a plurality of thin-oxide transistors.

19. A method of buffering a radio frequency (RF) signal, comprising:

generating, using a first buffer circuit, an output voltage in response to the RF signal;

detecting, using a first transistor coupled to receive the output voltage, that the output voltage exceeds a reference voltage and drawing a first reference current from a first current source;

injecting a first current generated by the first current source based on the first reference current to a first control node of the first buffer circuit; and

injecting a second current generated by the first current source based on the first reference current to a second control node of the first buffer circuit.

20. The method of claim 19 , further comprising:

converting a third current generated by the first current source based on the first reference current to a voltage using a resistor; and

generating a digital signal indicative of the voltage across the resistor.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 7, 2017
From: VAZ, BRUNO MIGUEL
To: XILINX, INC.
Reel/Frame 042732/0491 →
Cited By (1)
US 12,192,903