precision dual SPST switches that can be operated in a
single supply or in a dual supply configuration power supply
with low power dissipation. The DG2537, DG2538 and
DG2539 can switch both analog and digital signals within the
power supply rail, and conduct well in both directions.
Fabricated with advance submicron CMOS process, these
switches provide high precision low and flat ON resistance,
low leakage current, low parasitic capacitance, and low
charge injection.
The DG2537, DG2538 and DG2539 contain two
independent Single Pole Single Throw (SPST) switches.
Switch-1 and switch-2 are normally open for the DG2537 and
normally closed for the DG2538. For the DG2539, switch-1 is
normally open and switch-2 is normally closed with a
Break-Before-Make switching timing.
The DG2537, DG2538 and DG2539 are the ideal switches
for use in low voltage instruments and healthcare devices,
fitting the circuits of low voltage ADC and DAC, analog front
end gain control, and signal path control.
As a committed partner to the community and the
environment, Vishay Siliconix manufactures this product with
lead (Pb)-free device termination.
As a further sign of Vishay Siliconix's commitment, the
DG2537, DG2538 and D2539 are fully RoHS compliant and
halogen-free.
FEATURES
•
Halogen-free According to IEC 61249-2-21
Definition
• Low and flat switch on resistance, 2.5
/typ
• Low leakage and parasitic capacitance
• 366 MHz, - 3 dB bandwidth
• Latch-up current > 300 mA (JESD78)
• Over voltage tolerant TTL/CMOS compatible
•
Compliant to RoHS Directive 2002/95/EC
APPLICATIONS
•
•
•
•
•
•
•
•
•
Healthcare and medical devices
Test instruments
Portable meters
Data acquisitions
Control and automation
PDAs and modems
Communication systems
Audio, video systems
Mechanical reed relay replacement
FUNCTIONAL BLOCK DIAGRAM AND PIN CONFIGURATION
DG2537, MSOP-10
NO
1
COM
1
IN
2
GND
V-
1
2
3
4
5
10 V+
9
8
7
6
IN
1
COM
2
NO
2
NC
1
COM
1
IN
2
GND
V-
1
2
3
4
5
DG2538, MSOP-10
10 V+
9
8
7
6
Top View
IN
1
COM
2
NC
2
NO
1
COM
1
IN
2
GND
V-
1
2
3
4
5
DG2539, MSOP-10
10 V+
9
8
7
6
IN
1
COM
2
NC
2
Top View
Top View
TRUTH TABLE
(DG2537, DG2538)
DG2537
Logic
0
1
DG2538
1
0
Switches
Off
On
TRUTH TABLE
(DG2539)
Logic
0
1
Switch-1
Off
On
Switch-2
On
Off
ORDERING INFORMATION
Temperature Range
- 40 °C to 85 °C
Package
MSOP-10
MSOP-10
MSOP-10
Document Number: 63370
S11-1551-Rev. A, 01-Aug-11
Part Number
DG2537DQ-T1-GE3
DG2538DQ-T1-GE3
DG2539DQ-T1-GE3
www.vishay.com
1
This document is subject to change without notice.
THE PRODUCTS DESCRIBED HEREIN AND THIS DOCUMENT ARE SUBJECT TO SPECIFIC DISCLAIMERS, SET FORTH AT
www.vishay.com/doc?91000
DG2537, DG2538, DG2539
Vishay Siliconix
ABSOLUTE MAXIMUM RATINGS
Parameter
Referenced V+ to GND
IN, COM, NC, NO
a
Continuous Current (Any Terminal)
Peak Current (Pulsed at 1 ms, 10 % duty cycle)
Storage Temperature (D Suffix)
Power Dissipation (Packages)
b
Limit
- 0.3 to 6
- 0.3 to (V+ + 0.3)
± 50
± 200
- 65 to 150
MSOP-10
c
Unit
V
mA
°C
mW
320
Notes:
a. Signals on NC, NO, or COM or IN exceeding V+ will be clamped by internal diodes. Limit forward diode current to maximum current ratings.
b. All leads welded or soldered to PC board.
c. Derate 4 mW/°C above 70 °C.
SPECIFICATIONS
(V+ = 3 V, V- = 0 V)
Test Conditions
Otherwise Unless Specified
V+ = 3 V, V- = 0 V, ± 10 %, V
IN
= 0.4 V or 1.5 V
e
Limits
- 40 °C to 85 °C
Temp.
a
Min.
b
Typ.
c
Max.
b
Unit
Parameter
Analog Switch
Analog Signal Range
d
On-Resistance
R
ON
Flatness
d
R
ON
Match
d
Symbol
V
NO
, V
NC
V
COM
R
ON
R
ON
Flatness
R
ON
Match
I
NO(off)
I
NC(off)
I
COM(off)
Full
V+ = 2.7 V, V- = 0 V,
V
COM
= 0 V to V+, I
NO
, I
NC
= - 10 mA
V+ = 2.7 V, V- = 0 V,
V
COM
= 1.1 V to 1.6 V, I
NO
, I
NC
= - 10 mA
V+ = 2.7 V, V- = 0 V,
V
D
= 1.1 V to 1.6 V, I
D
= - 10 mA
V+ = 3.3 V, V- = 0 V,
V
NO
, V
NC
= 1 V/3 V, V
COM
= 3 V/1 V
V+ = 3.3 V, V- = 0 V,
V
NO
, V
NC
= V
COM
= 1 V/3 V
Room
Full
Room
Room
Full
Room
Full
Room
Full
Room
Full
Full
Full
f = 1 MHz
V
IN
= 0 or V+
Full
Full
Room
Full
Room
Full
Room
Room
Room
Room
Room
Room
Room
V
IN
= 0 or V+, f = 1 MHz
Room
Room
V
IN
= 0 or V+, V+ = 3.3 V
0
6.5
V+
V
10
0.4
0.3
0.9
- 0.25
- 0.35
- 0.25
- 0.35
- 0.25
- 0.35
2
0.4
2.4
-1
16
55
7
40
1.8
319
- 67
- 92
- 47
- 90
8
9
22
1
µA
pF
dB
pC
MHz
ns
1
0.25
0.35
0.25
0.35
0.25
0.35
nA
Switch Off Leakage Current
Channel-On Leakage Current
Digital Control
Input High Voltage
Input Low Voltage
Input Capacitance
d
Input Current
Dynamic Characteristics
Turn-On Time
Turn-Off Time
Charge Injection
d
Bandwidth
d
Off-Isolation
d
Crosstalk
d
Off-Isolation
d
Crosstalk
d
Source-Off Capacitance
d
Drain-Off Capacitance
d
Channel-On Capacitance
d
Power Supply
Power Supply Current
I
COM(on)
V
INH
V
INL
C
in
I
INL
or I
INH
V
pF
µA
t
ON
t
OFF
Q
INJ
BW
OIRR
X
TALK
OIRR
X
TALK
C
NC/NO(off)
C
COM(off)
C
ON
I+
V
NO
or V
NC
= 2 V, R
L
= 300
,
C
L
= 35 pF,
figures 1 and 2
C
L
= 1 nF, V
GEN
= 0 V, R
GEN
= 0
,
figure 3
V+ = 3 V, R
L
= 50
,
C
L
= 5 pF, - 3dB
R
L
= 50
,
C
L
= 5 pF, f = 1 MHz
R
L
= 50
,
C
L
= 5 pF, f = 10 MHz
www.vishay.com
2
Document Number: 63370
S11-1551-Rev. A, 01-Aug-11
This document is subject to change without notice.
THE PRODUCTS DESCRIBED HEREIN AND THIS DOCUMENT ARE SUBJECT TO SPECIFIC DISCLAIMERS, SET FORTH AT
www.vishay.com/doc?91000
DG2537, DG2538, DG2539
Vishay Siliconix
SPECIFICATIONS
(V+ = 5 V, V- = 0 V)
Test Conditions
Otherwise Unless Specified
V+ = 5 V, V- = 0 V, ± 10 %, V
IN
= 0.8 V or 2.4 V
e
Limits
- 40 °C to 85 °C
Temp.
a
Min.
b
Typ.
c
Max.
b
Unit
Parameter
Analog Switch
Analog Signal Range
d
On-Resistance
R
ON
Flatness
d
R
ON
Match
d
Symbol
V
NO
, V
NC
V
COM
R
ON
R
ON
Flatness
R
ON
Match
I
NO(off)
I
NC(off)
I
COM(off)
Full
V+ = 4.5 V, V- = 0 V,
V
COM
= 0 V to V+, I
NO
, I
NC
= 10 mA
V+ = 4.5 V, V- = 0 V,’
V
COM
= 1.3 V to 3 V, I
NO
, I
NC
= 10 mA
V+ = 4.5 V, V- = 0 V,
I
D
= 10 mA, V
COM
= 1.3 V to 3 V
V+ = 5.5 V, V- = 0 V,
V
NO
, V
NC
= 1 V/4.5 V, V
COM
= 4.5 V/1 V
V+ = 5.5 V, V- = 0 V,
V
NO
, V
NC
= V
COM
= 1 V/4.5 V
Room
Full
Room
Room
Room
Full
Room
Full
Room
Full
Full
Full
f = 1 MHz
V
IN
= 0 or V+
Full
Full
Room
Full
Room
Full
Room
Room
Room
Room
Room
Room
Room
V
IN
= 0 or V+, f = 1 MHz
Room
Room
0
2.5
V+
4.5
5
1.5
0.9
0.25
0.35
0.25
0.35
0.25
0.35
V
0.75
0.2
- 0.25
- 0.35
- 0.25
- 0.35
- 0.25
- 0.35
2.4
Switch Off Leakage Current
nA
Channel-On Leakage Current
Digital Control
Input High Voltage
Input Low Voltage
Input Capacitance
Input Current
Dynamic Characteristics
Turn-On Time
d
Turn-Off Time
d
I
COM(on)
V
INH
V
INL
C
in
I
INL
or I
INH
0.8
2.2
- 0.1
0.005
17
9
35
2.2
366
- 67
- 90
- 47
- 90
8
9
22
2.6
4.3
2
0.1
30
40
V
pF
µA
t
ON
t
OFF
Q
INJ
BW
OIRR
X
TALK
OIRR
X
TALK
C
NC/NO(off)
C
COM(off)
C
ON
V+
I+
V
NO
or V
NC
= 3 V, R
L
= 300
,
C
L
= 35 pF,
figures 1 and 2
C
L
= 1 nF, V
GEN
= 0 V, R
GEN
= 0
,
figure 3
V+ = 5 V, R
L
= 50
,
C
L
= 5 pF, - 3 dB
R
L
= 50
,
C
L
= 5 pF, f = 1 MHz
R
L
= 50
,
C
L
= 5 pF, f = 10 MHz
ns
Charge Injection
d
Bandwidth
d
Off-Isolation
d
Crosstalk
d
Off-Isolation
d
Crosstalk
d
Source-Off Capacitance
d
Drain-Off Capacitance
d
Channel-On Capacitance
d
Power Supply
Power Supply Range
Power Supply Current
pC
MHz
dB
pF
V
µA
V
IN
= 0 or V+, V+ = 5.5 V
Full
Document Number: 63370
S11-1551-Rev. A, 01-Aug-11
www.vishay.com
3
This document is subject to change without notice.
THE PRODUCTS DESCRIBED HEREIN AND THIS DOCUMENT ARE SUBJECT TO SPECIFIC DISCLAIMERS, SET FORTH AT
www.vishay.com/doc?91000
DG2537, DG2538, DG2539
Vishay Siliconix
SPECIFICATIONS
(V+ = + 2.5 V, V- = - 2.5 V)
Test Conditions
Otherwise Unless Specified
V+ = + 2.5 V, V- = - 2.5 V, ± 10 %,
V
IN
= 0.8 V or 2.4 V
e
Limits
- 40 °C to 85 °C
Temp.
a
Min.
b
Typ.
c
Max.
b
Unit
Parameter
Analog Switch
Analog Signal Range
On-Resistance
R
ON
Flatness
R
ON
Match
Symbol
V
NO
, V
NC
V
COM
R
ON
R
ON
Flatness
R
ON
Match
I
NO(off)
I
NC(off)
I
COM(off)
Full
V+ = + 2.25 V, V- = - 2.25 V,
V
COM
= V- to V+, I
NO
, I
NC
= 10 mA
V+ = + 2.25 V, V- = - 2.25 V,
V
COM
= ± 1.2 V, 0 V, I
NO
, I
NC
= 10 mA
V+ = + 2.25 V, V- = - 2.25 V,
V
COM
= ± 1.4 V, I
NO
, I
NC
= 10 mA
V+ = + 2.75 V, V- = - 2.75 V,
V
S
= ± 2.5 V, V
D
= ± 2.5 V
V+ = + 2.75 V, V- = - 2.25 V,
V
S
= V
D
= ± 2.5 V
Room
Full
Room
Room
Room
Full
Room
Full
Room
Full
Full
Full
f = 1 MHz
V
IN
= 0 or V+
Full
Full
Room
Full
Room
Full
Room
Room
Room
Room
Room
Room
Room
V
IN
= 0 or V+, f = 1 MHz
Room
Room
V-
3.6
0.7
0.2
- 0.25
- 0.35
- 0.25
- 0.35
- 0.25
- 0.35
2.4
V+
4.5
5
1.5
0.9
0.25
0.35
0.25
0.35
0.25
0.35
V
Switch Off Leakage Current
nA
Switch on Leakage
Digital Control
Input High Voltage
Input Low Voltage
Input Capacitance
Input Current
Dynamic Characteristics
Turn-On Time
d
Turn-Off Time
d
I
COM(on)
V
INH
V
INL
C
in
I
INL
or I
INH
0.8
2.2
- 0.1
0.1
35
40
20
25
2.2
366
- 67
- 90
- 47
- 90
6
12
24
1.25
2.75
2
V
pF
µA
t
ON
t
OFF
Q
INJ
BW
OIRR
X
TALK
OIRR
X
TALK
C
NC/NO(off)
C
COM(off)
C
ON
V+
I+
V
NO
or V
NC
= 2 V, R
L
= 300
,
C
L
= 35 pF
C
L
= 1 nF, V
GEN
= 0 V, R
GEN
= 0
V+ = + 2.5 V, V- = - 2.5 V,
R
L
= 50
,
C
L
= 5 pF, - 3dB
V+ = + 2.5 V, V- = - 2.5 V,
R
L
= 50
,
C
L
= 5 pF, - 3dB, f = 1 MHz
V+ = + 2.5 V, V- = - 2.5 V,
R
L
= 50
,
C
L
= 5 pF, - 3dB, f = 10 MHz
ns
Charge Injection
d
Bandwidth
d
Off-Isolation
d
Crosstalk
d
Off-Isolation
d
Crosstalk
d
Source-Off Capacitance
d
Drain-Off Capacitance
d
Channel-On Capacitance
d
Power Supply
Power Supply Range
Power Supply
pC
MHz
dB
pF
V
µA
V
IN
= 0 or V+, V+ = 2.5 V
Notes:
a. Room = 25 °C, Full = as determined by the operating suffix.
b. The algebraic convention whereby the most negative value is a minimum and the most positive a maximum, is used in this data sheet.
c. Typical values are for design aid only, not guaranteed nor subject to production testing.
d. Guarantee by design, nor subjected to production test.
e. V
IN
= input voltage to perform proper function.
f. Not production tested.
Stresses beyond those listed under “Absolute Maximum Ratings” may cause permanent damage to the device. These are stress ratings only, and functional operation
of the device at these or any other conditions beyond those indicated in the operational sections of the specifications is not implied. Exposure to absolute maximum
rating conditions for extended periods may affect device reliability.
www.vishay.com
4
Document Number: 63370
S11-1551-Rev. A, 01-Aug-11
This document is subject to change without notice.
THE PRODUCTS DESCRIBED HEREIN AND THIS DOCUMENT ARE SUBJECT TO SPECIFIC DISCLAIMERS, SET FORTH AT
www.vishay.com/doc?91000
DG2537, DG2538, DG2539
Vishay Siliconix
TYPICAL CHARACTERISTICS
(T
A
= 25 °C, unless otherwise noted)
35
30
R
ON
- On-Resistance (Ω)
25
20
V+
= 2.4
V
15
10
5
0
0
0.5
1
1.5
2
2.5
3
3.5
4
4.5
5
5.5
V
D
- Analog
Voltage
(V)
V+
= 2.7
V
V+
= 3.0
V
V+
= 3.3
V
V+
= 4.5
V
V+
= 5.0
V
V+
= 5.5
V
10
T = 25 °C
INO/NC = - 10 mA
V+
= 1.8
V
9
8
V+
= 2.7
V
INO/NC = - 10 mA
+ 25 °C
+
85
°C
- 40 °C
R
ON
- On-Resistance (Ω)
7
6
5
4
3
2
1
0
0
0.4
0.8
1.2
1.6
2.0
V
D
- Analog
Voltage
(V)
2.4
2.8
R
ON
vs. V
D
and Single Supply Voltage
5.0
4.5
4.0
R
ON
- On-Resistance (Ω)
3.5
3.0
2.5
2.0
1.5
1.0
0.5
0.0
0.0
0.5
1.0
1.5
2.0
2.5
3.0
3.5
4.0
4.5
V+
= 4.5
V
INO/NC = - 10 mA
+ 25 °C
+
85
°C
- 40 °C
4
5
R
ON
vs. Analog Voltage and Temperature
V = ± 2.25 V
IN
O
/N
C
= - 10 mA
+ 85 °C
R
ON
- On-Resistance (Ω)
3
2
+ 25 °C
- 40 °C
1
0
- 2.5 - 2 - 1.5
- 1 - 0.5
0
0.5
1
1.5
2
2.5
V
D
- Analog
Voltage
(V)
V
COM
- Analog Voltage (V)
R
ON
vs. Analog Voltage and Temperature
100
V+
= 5.5
V
10 mA
1 mA
R
ON
vs. Analog Voltage and Temperature
V+
= 5.5
V
10
I+ - Supply Current (A)
100
µA
10
µA
1
µA
Leakage Current (pA)
I
COM(ON)
1
I
COM(OFF)
I
NO(OFF)
V+
= 5.0
V
100 nA
10 nA
1 nA
V+
= 3.3
V
V+
= 3.0
V
V+
= 1.8
V
0.1
- 60
- 40
- 20
0
20
40
60
Temperature (°C)
80
100
120
100 pA
10
100
1K
10K
100K
1M
Input Switching Frequency (Hz)
10M
Leakage Current vs. Temperature
Supply Current vs. Input Switching Frequency
Document Number: 63370
S11-1551-Rev. A, 01-Aug-11
www.vishay.com
5
This document is subject to change without notice.
THE PRODUCTS DESCRIBED HEREIN AND THIS DOCUMENT ARE SUBJECT TO SPECIFIC DISCLAIMERS, SET FORTH AT
The first wave of prizes have been sent out. Due to my negligence, I made a mistake in the floor at the beginning. I don’t want to disappoint the participants, nor do I want to change the results that...
Some say 12, some say 9, some say a lot, some say very little, so how many it is exactly? No one has been able to figure it out yet! ! ! ! ! ! ! ! ! ! ! ! ! ! ! ! ! ! ! ! ! !...
The TMS320F28335 contains a 12-bit AD converter with the following features: 12-bit ADC core with built-in (sample and hold) S/H Analog input: 0.0V to 3.0V (voltages above 3.0V produce full-scale conv...
I would like to ask the experts, how to measure the frequency (about 30k) and duty cycle (standard square wave) of the chip semi-finished product (wafer) when installing the acquisition card on the in...
I redirected the system standard output to a file. The problem is: when the system disk is full and can no longer be written, how does the program know this situation? Thank you...
Digital Signal Processor is a high-speed process that converts analog signals into digital signals. Its processor processing speed is 5-10 times that of ordinary processors. It is widely used in digit...
Limited vocabulary recognition
According to the number of characters, words or short sentences in the vocabulary, it can be roughly divided into: less than 100 is small vocabulary; 100-1000 is...[Details]
Logic analyzers are widely used tools in digital design verification and debugging. They can verify the proper functioning of digital circuits and help users identify and troubleshoot faults. They ...[Details]
When discussing autonomous driving technology, there are often two extremes: on the one hand, there's the vision of "fully autonomous driving," while on the other, there's concern about potential s...[Details]
Inverter power supplies on the market can generally be divided into two categories: sine wave inverters and square wave inverters. Some engineers also like to categorize pure sine wave inverters as...[Details]
Common methods for troubleshooting roller press bearing wear include repair welding, thermal spraying, brush plating, and scrapping and replacement. However, these methods are often subject to asse...[Details]
Plug-in hybrid vehicles (PHEVs) utilize two powertrains. Their pure electric range is typically inferior to that of pure electric vehicles, often reaching less than half that. Currently, mainstream...[Details]
As the range of electric vehicles continues to increase, driving electric vehicles for long-distance travel has become a trend. For high-speed travel, how much impact will high-speed driving of ele...[Details]
On August 18th, China's largest expressway
charging station,
the G25 Changshen Expressway Tonglu Service Area (South Area), officially opened and launched its integrated solar-storage-charg...[Details]
Automotive electronics systems are facing a dual challenge of functional safety and cybersecurity.
The NXP
S32K3
series MCUs utilize a deep protection system built with a Hardware Sec...[Details]
This new standardized, pre-integrated computing platform is designed to accelerate chip development, reduce development costs, and provide scalable software to power the AI-defined car.
...[Details]
Shock absorbers, as the name implies, are responsible for cushioning and absorbing shocks in a car. So how much do you know about shock absorbers and how to replace them in electric cars?
...[Details]
The term "remote meter reading" literally emphasizes remoteness. But how far is remote? One kilometer? Two kilometers? Those aren't considered far at all. Currently, the longest distance for ...[Details]
introduction
In the context of the comprehensive development of the Internet of Things (IoT) technology under the "Perceiving China" initiative, "Perceiving Mines" is a crucial component of Ch...[Details]
Black Sesame's full-stack computing platform has been named Singapore's "GO! Technology Ulisation Winner." Designed for real-time AI inference for next-generation robots, the platform has been succ...[Details]
The Indian government recently approved four new semiconductor manufacturing projects under the Indian Semiconductor Mission (ISM). These projects are located in the states of Odisha, Punjab, and A...[Details]