IP Library Granted Patent US 7,319,220
Granted Patent B2
US 7,319,220 · App. 11/392,175 · Granted Jan 15, 2008

Trans-impedance amplifier with offset current

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Quick Facts
Patent No.
US 7,319,220
App. No.
11/392,175
Granted
Jan 15, 2008
Kind
B2
Abstract

A trans-impedance amplifier receives an input current and is operable to generate an output voltage responsive to the input current. The amplifier is responsive to an increased range of input currents and has a wide bandwidth. The amplifier includes an input stage having a first and a second transistor and is configured to receive the input current. The amplifier includes an output stage coupled to the input stage and having a third and a fourth transistor. A variable resistor is coupled to the output stage to adjust the amount of current in the output stage. A variable current source is coupled to the output stage and is operable to adjust the amount of current in the output stage. A output driver, which is coupled to the output stage, includes at least another transistor. The output driver is operable to provide the output voltage and is operable to reduce the output impedance of the amplifier.

Claims (37)

1. A trans-impedance amplifier configured to receive an input current and operable to generate an output voltage responsive to the input current, the amplifier responsive to an increased range of input currents and having a wide bandwidth, comprising:

an input stage having a first and a second transistor connected in series, the input stage coupled between a supply voltage and ground and configured to receive the input current;

an output stage coupled to the input stage, the output stage having a third and a fourth transistor connected in series, the output stage coupled between the supply voltage and ground;

a feedback loop coupled to the input stage, the feedback loop operable to reduce the input impedance of the amplifier;

a variable resistor connected in series with the third and fourth transistors and the supply voltage, the variable resister being operable to adjust the current in the output stage;

a variable current source being operable to supply a variable current to the output stage, wherein an increase in the variable current by the variable current source causes a decrease in the current flowing through the variable resistor and wherein a decrease in the variable current by the variable current source causes an increase in the current flowing through the variable resistor; and

an output driver having at least a fifth transistor coupled to the output stage and being operable to provide the output voltage and to reduce the output impedance of the amplifier.

2. The trans-impedance amplifier of claim 1 , wherein the input current is provided by a photo detector.

3. The trans-impedance amplifier of claim 1 , wherein the variable resistor couples a supply voltage source to the output stage.

4. The trans-impedance amplifier of claim 1 , further comprising a first bias current coupled to the input stage and operable to bias the input stage.

5. The trans-impedance amplifier of claim 1 , further comprising a second bias current coupled to the feedback loop and operable to bias the feedback loop.

6. The trans-impedance amplifier of claim 1 , further comprising a third bias current operable to bias the output driver.

7. A control circuit configured to control a light emitting device (LED) comprising:

a photo detector operable to generate an input current responsive to light emitted by the LED;

a trans-impedance amplifier configured to receive the input current and operable to generate a first output voltage responsive to the input current, the trans-impedance amplifier comprising:

an input stage having a first and a second transistor connected in series, the input stage coupled between a supply voltage and ground and configured to receive the input current;

an output stage coupled to the input stage, the output stage having a third and a fourth transistor connected in series, the output stage coupled between the supply voltage and ground;

a feedback loop coupled to the input stage, the feedback loop operable to reduce the input impedance of the amplifier;

a variable resistor connected in series with the third and fourth transistors and the supply voltage, the variable resister being operable to adjust the current the output stage;

a variable current source being operable to supply a variable current to the output stage, wherein an increase in the variable current by the variable current source causes a decrease in the current flowing through the variable resistor and wherein a decrease in the variable current by the variable current source causes an increase in the current flowing through the variable resistor;

an output driver having at least a fifth transistor coupled to the output stage and being operable to provide the first output voltage and to reduce the output impedance of the amplifier;

a comparison circuit configured to receive the first output voltage and a reference voltage, and operable to generate a second output voltage; and

a driver circuit configured to receive the second output voltage and operable to generate a control current responsive to the second output voltage, wherein the control current controls the output of the LED.

8. The circuit of claim 7 , wherein the trans-impedance amplifier further comprises a first bias current coupled to the input stage and operable to bias the input stage.

9. The circuit of claim 7 , wherein the trans-impedance amplifier further comprises a second bias current coupled to the feedback loop and operable to bias the feedback loop.

10. The circuit of claim 7 , wherein the trans-impedance amplifier further comprises a third bias current operable to bias the output driver.

11. A trans-impedance amplifier configured to receive an input current and operable to generate an output voltage responsive to the input current, the amplifier responsive to an increased range of input currents and having a wide bandwidth, comprising:

an input stage having a first and a second transistor connected in series, the input stage coupled between a supply voltage and ground and configured to receive the input current;

an output stage coupled to the input stage, the output stage having a third and a fourth transistor connected in series, the output stage coupled between the supply voltage and ground;

a variable resistor connected in series with the third and fourth transistors and the supply voltage, the variable resister being operable to adjust the current in the output stage;

a variable current source being operable to supply a variable current to the output stage, wherein an increase in the variable current by the variable current source causes a decrease in the current flowing through the variable resistor and wherein a decrease in the variable current by the variable current source causes an increase in the current flowing through the variable resistor; and

an output driver having at least a fifth transistor coupled to the output stage and being operable to provide the output voltage and to reduce the output impedance of the amplifier.

12. The trans-impedance amplifier of claim 11 , wherein the input current is provided by a photo detector.

13. The trans-impedance amplifier of claim 11 , wherein the variable resistor couples a supply voltage source to the output stage.

14. The trans-impedance amplifier of claim 11 , wherein the photo detector is optically coupled to a light emitting device (LED).

15. The trans-impedance amplifier of claim 11 , further comprising a first bias current coupled to the input stage and operable to bias the input stage.

16. The trans-impedance amplifier of claim 11 , further comprising a third bias current operable to bias the output driver stage.

Assignments (7)
CHANGE OF NAME Recorded Aug 26, 2016
From: M/A-COM TECHNOLOGY SOLUTIONS HOLDINGS, INC.
To: MACOM TECHNOLOGY SOLUTIONS HOLDINGS, INC.
Reel/Frame 039831/0286 →
CHANGE OF NAME Recorded Aug 9, 2016
From: M/A-COM TECHNOLOGY SOLUTIONS HOLDINGS, INC.
To: MACOM TECHNOLOGY SOLUTIONS HOLDINGS, INC.
Reel/Frame 039634/0365 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 11, 2015
From: MINDSPEED TECHNOLOGIES, INC.
To: M/A-COM TECHNOLOGY SOLUTIONS HOLDINGS, INC.
Reel/Frame 037274/0238 →
RELEASE OF SECURITY INTEREST Recorded May 9, 2014
From: JPMORGAN CHASE BANK, N.A.
To: MINDSPEED TECHNOLOGIES, INC.
Reel/Frame 032861/0617 →
SECURITY INTEREST Recorded May 9, 2014
From: M/A-COM TECHNOLOGY SOLUTIONS HOLDINGS, INC.; MINDSPEED TECHNOLOGIES, INC.; BROOKTREE CORPORATION
To: GOLDMAN SACHS BANK USA
Reel/Frame 032859/0374 →
SECURITY INTEREST Recorded Mar 21, 2014
From: MINDSPEED TECHNOLOGIES, INC.
To: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 032495/0177 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 24, 2013
From: BAZZANI, CRISTIANO, MR; SOLTESZ, DARIO, MR; COPS, WIM, MR
To: MINDSPEED TECHNOLOGIES, INC
Reel/Frame 031473/0658 →