IP Library Granted Patent US 7,202,738
Granted Patent B1
US 7,202,738 · App. 11/054,140 · Granted Apr 10, 2007

Accurate voltage to current converters for rail-sensing current-feedback instrumentation amplifiers

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Quick Facts
Patent No.
US 7,202,738
App. No.
11/054,140
Granted
Apr 10, 2007
Kind
B1
Abstract

Accurate voltage to current converters for rail-sensing current-feedback instrumentation amplifiers using folded cascode transistors. Embodiments using various degrees of cascoding, as well as using bootstrapped folded cascoded input transistors are disclosed. Circuits for sensing around the negative rail are disclosed, though circuits for sensing around the positive rail may be readily achieved by use of complementary devices.

Claims (28)

1. A differential voltage to current converter comprising:

first and second transistors of a first conductivity type and third through sixth transistors of a second conductivity type, each transistor having first and second terminals and a control terminal, the conduction between the first and second terminal being controlled by the voltage between the control terminal and the first terminal;

first through fifth current sources;

first through fourth resistors each having first and second terminals;

the second current source being coupled between a first power supply terminal and the first terminals of the first and second resistors, the second terminals of the first and second resistors being coupled to the first terminals of the first and second transistors, respectively, the second terminals of the first and second transistors being coupled to a second power supply terminal through fourth and fifth current sources, respectively, and to the first terminals of the fifth and sixth transistors, respectively;

the first and third current sources being coupled between the first power supply terminal and the control terminals of the third and fourth transistors, respectively, and to the second terminals of the fifth and sixth transistors, respectively;

the third and fourth transistors having their second terminals coupled to the second terminals of the first and second resistors, respectively, and their first terminals coupled through the third and fourth resistors to the second power supply terminals, respectively, the first terminals of the third and fourth transistors also being coupled to first and second output terminals of the differential voltage to current converter;

the control terminals of the fifth and sixth transistors being coupled to a first reference voltage;

the control terminals of the first and second transistors being coupled to first and second input terminals, respectively, of the differential voltage to current converter.

2. The differential voltage to current converter of claim 1 wherein the fourth and fifth current sources are resistors.

3. The differential voltage to current converter of claim 1 further comprising:

seventh through tenth transistors of the second conductivity type, each transistor having first and second terminals and a control terminal, the conduction between the first and second terminal being controlled by the voltage between the control terminal and the first terminal;

fifth and sixth resistors;

the first and third current sources being coupled between the first power supply terminal and the second terminals of the fifth and sixth transistors, respectively, through the fifth resistor and the seventh transistor, and the sixth resistor and the eighth transistor, respectively, the first terminals of the seventh and eighth transistors being coupled to the second terminals of the fifth and sixth transistors, respectively, the second terminals of the seventh and eighth transistors being coupled to the fifth and sixth resistors, respectively, the control terminals of the seventh and eighth transistors being coupled to a second reference voltage;

the third and fourth transistors having their second terminals coupled to the second terminals of the first and second resistors, respectively, through the ninth and tenth transistors, respectively, the second terminals of the ninth and tenth transistors being coupled to the second terminals of the first and second resistors, respectively, the first terminals of the ninth and tenth transistors also being coupled to the second terminals of the third and fourth transistors, respectively, the control terminals of the ninth and tenth transistors being coupled to the first and third current sources.

4. The differential voltage to current converter of claim 3 further comprising;

eleventh and twelfth transistors of a first conductivity type, each transistor having first and second terminals and a control terminal, the conduction between the first and second terminal being controlled by the voltage between the control terminal and the first terminal;

the second terminals of the first and second transistors being coupled to the fourth and fifth current sources, respectively, and to the first terminals of the fifth and sixth transistors, respectively, through the eleventh and twelfth transistors, respectively, the second terminals of the first and second transistors being coupled to the first terminals of the eleventh and twelfth transistors, the second terminals of the eleventh and twelfth transistors being coupled to the fourth and fifth current sources, respectively, and to the first terminals of the fifth and sixth transistors, respectively, the control terminals of the eleventh and twelfth transistors being coupled to the control terminals of the first and second transistors, respectively.

5. The differential voltage to current converter of claim 4 wherein the first and second transistors have a higher threshold than the eleventh and twelfth transistors.

6. The differential voltage to current converter of claim 1 wherein the fourth and fifth current sources are active current sources.

7. The differential voltage to current converter of claim 1 further comprising:

seventh and eighth transistors of the first conductivity type, each having first and second terminals and a control terminal, the conduction between the first and second terminal being controlled by the voltage between the control terminal and the first terminal;

sixth and seventh current sources and a fifth resistor;

the first and third current sources being coupled between the first power supply terminal and the control terminals of the third and fourth transistors through the seventh and eighth transistors, respectively;

the second current source being coupled between the first power supply terminal and the first terminals of the first and second resistors through the fifth resistor;

the control terminals of the seventh and eighth transistors being coupled to a second reference voltage;

the control terminals of the third and fourth transistors being coupled to the second power supply terminal through the sixth and seventh current sources, respectively;

the first reference voltage being the voltage of the connection between the second current source and the fifth resistor.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 28, 2020
From: MAXIM INTEGRATED PRODUCTS, INC.
To: MURATA MANUFACTURING CO., LTD.
Reel/Frame 051959/0111 →
CHANGE OF ADDRESS Recorded Feb 6, 2020
From: MAXIM INTEGRATED PRODUCTS, INC.
To: MAXIM INTEGRATED PRODUCTS, INC.
Reel/Frame 051839/0680 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 8, 2005
From: HUIJSING, JOHAN HENDRIK; SHAHI, BEHZAD
To: MAXIM INTEGRATED PRODUCTS, INC.
Reel/Frame 016264/0425 →