IP Library Granted Patent US 7,583,108
Granted Patent B2
US 7,583,108 · App. 11/384,013 · Granted Sep 1, 2009

Current comparator using wide swing current mirrors

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Quick Facts
Patent No.
US 7,583,108
App. No.
11/384,013
Granted
Sep 1, 2009
Kind
B2
Abstract

A current comparator includes an input node for receiving an input current, an output node, a first wide swing current mirror having an input coupled to the input node of the current comparator, a power node for receiving a first power supply voltage such as ground, and an output coupled to the output node of the current comparator, and a second wide swing current mirror having an input coupled to the input node of the current comparator, a power node for receiving a second power supply voltage such as VDD, and an output coupled to the output node of the current comparator. The output node can provide either a voltage or current output signal.

Claims (33)

1. A current comparator, comprising:

an input node for receiving an input current;

an output node;

a first wide swing current mirror comprising:

an input coupled to the input node of the current comparator, a power node for receiving a first power supply voltage, and an output coupled to the output node of the current comparator, wherein the first wide swing current mirror comprises a first N-channel transistor directly coupled to the first power supply voltage, a gate directly coupled to the input node of the current comparator, and a drain;

a second N-channel transistor directly coupled to the first power supply voltage, a gate coupled to the gate of the first N-channel transistor, and a drain;

a third N-channel transistor having a source directly coupled to the drain of the first N-channel transistor, a gate coupled to a bias node, and a drain coupled to the input node of the current comparator;

a fourth N-channel transistor having a source directly coupled to the drain of the second N-channel transistor, a gate coupled to the bias node, and a drain coupled to the output node of the current comparator; and

a second wide swing current mirror formed using P-channel transistors comprising an input coupled to the input node of the current comparator, a power node for receiving a second power supply voltage, and an output coupled to the output node of the current comparator.

2. The current comparator of claim 1 , wherein the first power supply voltage comprises ground.

3. The current comparator of claim 1 , wherein the bias node is coupled to a source of bias voltage.

4. The current comparator of claim 3 , wherein the bias voltage is substantially equal to one volt.

5. The current comparator of claim 3 , wherein the bias voltage is substantially equal to VDD.

6. The current comparator of claim 1 , wherein the size of the second and fourth transistors is a multiple of the size of the first and third transistors.

7. The current comparator of claim 1 , wherein the second wide swing current mirror comprises:

a first transistor having a source directly coupled to the second power supply voltage, a gate coupled to the input node of the current comparator, and a drain;

a second transistor having a source directly coupled to the second power supply voltage, a gate coupled to the gate of the first transistor, and a drain;

a third transistor having a source coupled to the drain of the first transistor, a gate coupled to a bias node, and a drain coupled to the input node of the current comparator; and

a fourth transistor having a source coupled to the drain of the second transistor, a gate coupled to the bias node, and a drain coupled to the output node of the current comparator.

8. The current comparator of claim 7 , wherein the second power supply voltage comprises VDD.

9. The current comparator of claim 7 , wherein the bias node of the second wide swing current mirror is coupled to a source of bias voltage.

10. The current comparator of claim 9 wherein the bias voltage of the second wide swing current mirror is substantially equal to one volt less than VDD.

11. The current comparator of claim 9 wherein the bias voltage of the second wide swing current mirror is substantially equal to ground.

12. The current comparator of claim 7 wherein the size of the second and fourth transistors of the second wide swing current mirror is a multiple of the size of the first and third transistors of the second wide swing current mirror.

13. A current comparison method, comprising:

providing a first wide swing current mirror comprising:

an input coupled to an input node of a current comparator, a power node for receiving a first power supply voltage, and an output coupled to an output node of the current comparator, wherein the first wide swing current mirror comprises a first N-channel transistor having a source directly coupled to the first power supply voltage, a gate directly coupled to the input node of the current comparator, and a drain;

a second N-channel transistor having a source directly coupled to the first power supply voltage, a gate coupled to the gate of the first N-channel transistor, and a drain;

a third N-channel transistor having a source directly coupled to the drain of the first N-channel transistor, a gate coupled to a bias node, and a drain coupled to the input node of the current comparator;

a fourth N-channel transistor having a source coupled to the drain of the second N-channel transistor, a gate coupled to the bias node, and a drain coupled to the output node of the current comparator; and

providing a second wide swing current mirror formed using P-channel transistors comprising an input coupled to the input node of the current comparator, a power node for receiving a second power supply voltage, and an output coupled to the output node of the current comparator.

14. The current comparison method of claim 13 further comprising using the output node to provide an output current indicative of the direction of the input current.

15. The current comparison method of claim 13 further comprising using the output node to provide an output voltage indicative of the direction of the input current.

Assignments (10)
CHANGE OF NAME Recorded Aug 5, 2024
From: CAES COLORADO SPRINGS LLC
To: FRONTGRADE COLORADO SPRINGS LLC
Reel/Frame 068326/0038 →
SECURITY INTEREST Recorded Jan 9, 2023
From: CAES COLORADO SPRINGS LLC; COBHAM ADVANCED ELECTRONIC SOLUTIONS INC.
To: JPMORGAN CHASE BANK, N.A., AS COLLATERAL AGENT
Reel/Frame 062337/0939 →
ENTITY CONVERSION Recorded Aug 22, 2022
From: COBHAM COLORADO SPRINGS INC.
To: CAES COLORADO SPRINGS LLC
Reel/Frame 061299/0490 →
ENTITY CONVERSION Recorded Aug 22, 2022
From: COBHAM COLORADO SPRINGS INC.
To: CAES COLORADO SPRINGS LLC
Reel/Frame 061299/0532 →
CHANGE OF NAME Recorded Apr 7, 2021
From: AEROFLEX COLORADO SPRINGS, INC.
To: COBHAM COLORADO SPRINGS INC.
Reel/Frame 055847/0958 →
RELEASE OF PATENT SECURITY INTEREST Recorded Sep 12, 2014
From: JPMRGAN CHASE BANK, N.A.
To: AEROFLEX INCORPORATED; AEROFLEX/WEINSCHEL, INC.; AEROFLEX COLORADO SPRINGS, INC.; AEROFLEX MICROELECTRONIC SOLUTIONS, INC.; AEROFLEX PLAINVIEW, INC.; AEROFLEX SYSTEMS GROUP, INC.; AEROFLEX WICHITA, INC.
Reel/Frame 033728/0942 →
RELEASE OF SECURITY INTEREST IN INTELLECTUAL PROPERTY COLLATERAL Recorded Jul 1, 2011
From: GOLDMAN SACHS CREDIT PARTNERS, L.P., AS COLLATERAL AGENT
To: AEROFLEX COLORADO SPRINGS, INC.
Reel/Frame 026539/0435 →
SECURITY AGREEMENT Recorded Jun 10, 2011
From: AEROFLEX INCORPORATED; AEROFLEX/WEINSCHEL, INC.; AEROFLEX COLORADO SPRINGS, INC.; AEROFLEX MICROELECTRONIC SOLUTIONS, INC.; AEROFLEX PLAINVIEW, INC.; AEROFLEX SYSTEMS GROUP, INC.; AEROFLEX WICHITA, INC.
To: JPMORGAN CHASE BANK, NA, AS COLLATERAL AGENT
Reel/Frame 026422/0719 →
SECURITY AGREEMENT Recorded Sep 17, 2007
From: AEROFLEX COLORADO SPRINGS, INC.
To: GOLDMAN SACHS CREDIT PARTNERS, L.P., AS COLLATERAL AGENT
Reel/Frame 019834/0442 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 7, 2006
From: RYAN, KEVIN
To: AEROFLEX COLORADO SPRINGS INC.
Reel/Frame 017740/0527 →