IP Library Patent Application 14133087
Patent Application
App. No. 14/133,087

DIFFERENTIAL SWITCH DRIVE CIRCUIT AND CURRENT STEERING DIGITAL-TO-ANALOG CONVERTER

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Quick Facts
Patent No.
US None
App. No.
14/133,087
Abstract

A differential switch drive circuit includes a current source, a current control circuit including a pair of transistors having a pair of differential input terminals, a pair of differential output terminals for outputting differential output voltages, and a common connection node connected to the current source, and load elements each connected to a corresponding one of the pair of differential output terminals. Currents flowing through the pair of transistors are controlled so that the sum of currents flowing through the load elements during a steady state of the differential output voltages is different from the sum of currents flowing through the load elements during a transient state of the differential output voltages.

Claims (86)

1 . A differential switch drive circuit for driving a differential switch circuit including a first and a second switch element each having a terminal connected to a current source, comprising:

a current source;

at least one pair of transistors having a pair of differential input terminals, a pair of differential output terminals, and a common connection node connected to the current source; and

load elements each connected to a corresponding one of the pair of differential output terminals,

wherein

signal voltages are applied to the pair of differential input terminals, and output voltages having a steady state in which the output voltages each take a respective one of two substantially constant values and a transient state in which the output voltages transition between the two substantially constant values, are output to the pair of differential output terminals, depending on voltages of the pair of differential input terminals, and

currents flowing through the at least one pair of transistors are controlled so that the sum of values of currents flowing through the load elements during the steady state of the differential output voltages is different from the sum of values of currents flowing through the load elements during the transient state of the differential output voltages.

2 . The differential switch drive circuit of claim 1 , wherein

the current source is a MOS transistor having a source terminal connected to a fixed voltage, a gate terminal to which a bias voltage is supplied, and a drain terminal connected to the common connection node.

3 . The differential switch drive circuit of claim 1 , further comprising:

a bypass circuit connected to the at least one pair of transistors;

wherein

the currents flowing through the at least one pair of transistors are controlled based on a control signal supplied via a control terminal.

4 . The differential switch drive circuit of claim 3 , wherein

the bypass circuit includes a current path having a terminal connected to the common connection node of the at least one pair of transistors, and a gate terminal to which a dc voltage within a dc input range of a signal applied to the pair of input terminals is applied.

5 . The differential switch drive circuit of claim 1 , wherein

the at least one pair of transistors include a first, a second, a third, and a fourth MOS transistor,

a non-inverted input terminal is connected to a gate terminal of the first MOS transistor, and a source terminal of the third MOS transistor is connected to a drain terminal of the first MOS transistor,

an inverted input terminal is connected to a gate terminal of the second MOS transistor, and a source terminal of the fourth MOS transistor is connected to a drain terminal of the second MOS transistor,

the first and second MOS transistors have a common source terminal, and the current source is connected to the common source terminal,

an inverted output terminal and a first load element are connected to a drain terminal of the third MOS transistor,

a non-inverted output terminal and a second load element are connected to a drain terminal of the fourth MOS transistor, and

a signal which rises later than a signal of the non-inverted input terminal is input to a gate terminal of the third MOS transistor, and a signal which rises later than a signal of the inverted input terminal is input to a gate terminal of the fourth MOS transistor.

6 . The differential switch drive circuit of claim 5 , wherein

a non-inverted signal obtained by delaying a signal applied to the non-inverted input terminal is applied to the gate terminal of the third MOS transistor, and

an inverted signal obtained by delaying a signal applied to the inverted input terminal is applied to the gate terminal of the fourth MOS transistor.

7 . The differential switch drive circuit of claim 1 , wherein

the at least one pair of transistors include a first, a second, a third, and a fourth MOS transistor,

a non-inverted input terminal is connected to a gate terminal of the first MOS transistor, and a source terminal of the third MOS transistor is connected to a drain terminal of the first MOS transistor,

an inverted input terminal is connected to a gate terminal of the second MOS transistor, and a source terminal of the fourth MOS transistor is connected to a drain terminal of the second MOS transistor,

the first and second MOS transistors have a common source terminal, and the current source is connected to the common source terminal,

an inverted output terminal and a first load element are connected to a drain terminal of the third MOS transistor,

a non-inverted output terminal and a second load element are connected to a drain terminal of the fourth MOS transistor, and

a signal is applied via the non-inverted output terminal to a gate terminal of the third MOS transistor, and a signal is applied via the inverted output terminal to a gate terminal of the fourth MOS transistor.

8 . The differential switch drive circuit of claim 1 , wherein

the at least one pair of transistors include a first, a second, a third, a fourth, a fifth, and a sixth MOS transistor,

a non-inverted input terminal is connected to a gate terminal of the first MOS transistor, and source terminals of the third and fifth MOS transistors are connected to a drain terminal of the first MOS transistor,

an inverted input terminal is connected to a gate terminal of the second MOS transistor, and source terminals of the fourth and sixth MOS transistors are connected to a drain terminal of the second MOS transistor,

the first and second MOS transistors have a common source terminal, and the current source is connected to the common source terminal,

an inverted output terminal and a first load element are connected to a drain terminal of the third MOS transistor, and

a non-inverted output terminal and a second load element are connected to a drain terminal of the fourth MOS transistor.

9 . The differential switch drive circuit of claim 8 , wherein

a gate terminal of the fifth MOS transistor is connected to the inverted input terminal, and a gate terminal of the sixth MOS transistor is connected to the non-inverted input terminal.

10 . The differential switch drive circuit of claim 1 , wherein

the at least one pair of transistors include a first, a second, a third, and a fourth MOS transistor,

a non-inverted input terminal is connected to a gate terminal of the first MOS transistor, and an inverted input terminal is connected to a gate terminal of the second MOS transistor,

the first and third MOS transistors have a common source terminal and a common drain terminal, a first current source is connected to the common source terminal, and a first load element and an inverted output terminal are connected to the common drain terminal,

the second and fourth MOS transistors have a common source terminal and a common drain terminal, a second current source is connected to the common source terminal, and a second load element and a non-inverted output terminal are connected to the common drain terminal, and

a signal which rises later than a signal applied to the non-inverted input terminal is input to a gate terminal of the third MOS transistor, and a signal which rises later than a signal applied to the inverted input terminal is input to a gate terminal of the fourth MOS transistor.

11 . The differential switch drive circuit of claim 1 , wherein

the at least one pair of transistors include a first, a second, a third, a fourth, a fifth, and a sixth MOS transistor,

a non-inverted input terminal is connected to a gate terminal of the first MOS transistor, and an inverted input terminal is connected to a gate terminal of the second MOS transistor,

the first, third, and fifth MOS transistors have a common source terminal, the first and third MOS transistors have a common drain terminal, a first current source is connected to the common source terminal of the first, third, and fifth MOS transistors, a first load element and an inverted output terminal are connected to the common drain terminal of the first and third MOS transistors, and a signal is input via a non-inverted output terminal to a gate terminal of the third MOS transistor, and

the second, fourth, and sixth MOS transistors have a common source terminal, the second and fourth MOS transistors have a common drain terminal, a second current source is connected to the common source terminal of the second, fourth, and sixth MOS transistors, a second load element and the non-inverted output terminal are connected to the common drain terminal of the second and fourth MOS transistors, and a signal is input via the inverted output terminal to a gate terminal of the fourth MOS transistor.

12 . A differential switch drive circuit for driving a differential switch circuit including a first and a second switch element each having a terminal connected to a current source, comprising:

a first current-mode logic circuit including a first pair of input terminals to which a first non-inverted signal and a first inverted signal are supplied, a second pair of input terminals to which a second non-inverted signal and a second inverted signal are supplied, a current source, a pair of output terminals through which a NAND and an AND logic signal are output, depending on signals applied to the first and second pairs of input terminals, and load elements each connected to a corresponding one of the pair of output terminals; and

a second current-mode logic circuit including a first pair of input terminals to which a first non-inverted signal and a first inverted signal are supplied, a second pair of input terminals to which a second non-inverted signal and a second inverted signal are supplied, a current source, a pair of output terminals through which a NAND and an AND logic signal are output, depending on signals applied to the first and second pairs of input terminals, and load elements each connected to a corresponding one of the pair of output terminals,

wherein

the NAND and AND logic outputs of the second current-mode logic circuit are input to the second pair of input terminals of the first current-mode logic circuit,

the NAND and AND logic outputs of the first current-mode logic circuit are input to the second pair of input terminals of the second current-mode logic circuit,

differential input signals having opposite phases are applied to the first pair of input terminals of the first current-mode logic circuit and the first pair of input terminals of the second current-mode logic circuit, and

the NAND logic output terminal of the first current-mode logic circuit serves as an inverted output terminal, and the NAND logic output terminal of the second current-mode logic circuit serves as a non-inverted output terminal.

13 . A differential switch drive circuit for driving a differential switch circuit including a first and a second switch element each having a terminal connected to a current source, comprising:

a first current-mode logic circuit including a first pair of input terminals to which a first non-inverted signal and a first inverted signal are supplied, a second pair of input terminals to which a second non-inverted signal and a second inverted signal are supplied, a current source, a pair of output terminals through which a NOR and an OR logic signal are output, depending on signals applied to the first and second pairs of input terminals, and load elements each connected to a corresponding one of the pair of output terminals; and

a second current-mode logic circuit including a first pair of input terminals to which a first non-inverted signal and a first inverted signal are supplied, a second pair of input terminals to which a second non-inverted signal and a second inverted signal are supplied, a current source, a pair of output terminals through which a NOR and an OR logic signal are output, depending on signals applied to the first and second pairs of input terminals, and load elements each connected to a corresponding one of the pair of output terminals,

wherein

the NOR and OR logic outputs of the second current-mode logic circuit are input to the second pair of input terminals of the first current-mode logic circuit,

the NOR and OR logic outputs of the first current-mode logic circuit are input to the second pair of input terminals of the second current-mode logic circuit,

differential input signals having opposite phases are applied to the first pair of input terminals of the first current-mode logic circuit and the first pair of input terminals of the second current-mode logic circuit, and

the NOR logic output terminal of the first current-mode logic circuit serves as an inverted output terminal, and the NOR logic output terminal of the second current-mode logic circuit serves as a non-inverted output terminal.

14 . The differential switch drive circuit of claim 1 , wherein

a buffer circuit is added to each of the pair of output terminals of the at least one pair of transistors, to drive the differential switch circuit.

15 . The differential switch drive circuit of claim 1 , wherein

one end of each of the first and second load elements is connected to a corresponding one of the pair of output terminals, the other end of each of the first and second load elements is connected to a common node, one end of a third load element is connected to the common node, and the other end of the third load element is connected to a power supply terminal.

16 . A current steering digital-to-analog converter comprising:

a decoder circuit configured to decode a digital signal;

a plurality of differential switch circuits; and

a plurality of differential switch drive circuits each configured to drive a corresponding one of the plurality of differential switch circuits,

wherein

the current steering digital-to-analog converter adds currents each selected by a corresponding one of the plurality of differential switch circuits together to output an analog quantity, and

each of the plurality of differential switch drive circuits includes a current control circuit to which a non-inverted and an inverted input terminal to which a signal decoded by the decoder circuit is applied, a non-inverted and an inverted output terminal, a first and a second load element connected to the inverted and non-inverted output terminals, respectively, and a current source, are connected, and the current control circuit controls currents flowing through the two load elements based on input signals applied to the non-inverted and inverted input terminals so that a point where output voltages of each of the differential switch drive circuits connected to a pair of input terminals of a corresponding one of the plurality of differential switch circuits are equal to each other, is substantially shifted from the middle voltage of a dc output voltage range of the output voltages.

17 . The current steering digital-to-analog converter of claim 16 , wherein

the plurality of differential switch drive circuits each include

a current source, and

a pair of transistors having a non-inverted and an inverted input terminal to which outputs of the decoder circuit are input, a non-inverted and an inverted output terminal, and a common connection node connected to the current source, and

output voltages having a steady state in which the output voltages each take a respective one of two substantially constant values and a transient state in which the output voltages transition between the two substantially constant values, are output to the non-inverted and inverted output terminals, depending on voltages of the non-inverted and inverted signals, and currents flowing through the pair of transistors are controlled so that the sum of values of currents flowing through the load elements during the steady state of the differential output voltages is different from the sum of values of currents flowing through the load elements during the transient state of the differential output voltages.

Assignments (3)
CORRECTIVE ASSIGNMENT TO CORRECT THE ERRONEOUSLY FILED APPLICATION NUMBERS 13/384239, 13/498734, 14/116681 AND 14/301144 PREVIOUSLY RECORDED ON REEL 034194 FRAME 0143. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Dec 24, 2020
From: PANASONIC CORPORATION
To: PANASONIC INTELLECTUAL PROPERTY MANAGEMENT CO., LTD.
Reel/Frame 056788/0362 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 10, 2014
From: PANASONIC CORPORATION
To: PANASONIC INTELLECTUAL PROPERTY MANAGEMENT CO., LTD.
Reel/Frame 034194/0143 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 5, 2014
From: NAGASAWA, TOSHINOBU; YAMADA, MICHIKO; IKOMA, HEIJI
To: PANASONIC CORPORATION
Reel/Frame 032349/0996 →