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DG418DJ-E3

DG418DJ-E3

DG418DJ-E3

Vishay Siliconix

175ns, 145ns SPST - NO 35Ohm Analog Switches BREAK-BEFORE-MAKE DG418 8 Pins 250pA 15V 8-DIP (0.300, 7.62mm)

SOT-23

DG418DJ-E3 Datasheet

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Specifications
Name Value
Type Parameter
Factory Lead Time 12 Weeks
Mount Through Hole
Mounting Type Through Hole
Package / Case 8-DIP (0.300, 7.62mm)
Number of Pins 8
Weight 930.006106mg
Operating Temperature -40°C~85°C TA
Packaging Tube
JESD-609 Code e3
Pbfree Code yes
Part Status Active
Moisture Sensitivity Level (MSL) 1 (Unlimited)
Number of Terminations 8
Resistance 35Ohm
Terminal Finish Matte Tin (Sn)
Subcategory Multiplexer or Switches
Max Power Dissipation 400mW
Technology CMOS
Peak Reflow Temperature (Cel) 260
Number of Functions 1
Supply Voltage 15V
Terminal Pitch 2.54mm
Time@Peak Reflow Temperature-Max (s) 30
Base Part Number DG418
Pin Count 8
Qualification Status Not Qualified
Operating Supply Voltage 15V
Number of Channels 1
Max Supply Voltage 36V
Min Supply Voltage 13V
Operating Supply Current 1nA
Nominal Supply Current 1nA
Power Dissipation 400mW
Max Supply Current 1μA
Throw Configuration SPST
Turn On Delay Time 175 ns
Number of Inputs 1
Voltage - Supply, Single/Dual (±) 12V ±15V
Supply Type Dual, Single
Neg Supply Voltage-Nom (Vsup) -15V
Turn-Off Delay Time 145 ns
Max Dual Supply Voltage 22V
On-State Resistance (Max) 35Ohm
Min Dual Supply Voltage 7V
Dual Supply Voltage 15V
Multiplexer/Demultiplexer Circuit 1:1
Current - Leakage (IS(off)) (Max) 250pA
Channel Capacitance (CS(off), CD(off)) 8pF 8pF
Switch Circuit SPST - NO
Switch Time (Ton, Toff) (Max) 175ns, 145ns
Charge Injection 60pC
Switching BREAK-BEFORE-MAKE
Switch-on Time-Max 250ns
Drain to Source Resistance 35Ohm
Normal Position NO
Height 3.81mm
Length 10.92mm
Width 7.11mm
REACH SVHC Unknown
RoHS Status ROHS3 Compliant
Lead Free Lead Free
Pricing & Ordering
Quantity Unit Price Ext. Price
1 $10.502342 $10.502342
10 $9.907870 $99.0787
100 $9.347047 $934.7047
500 $8.817968 $4408.984
1000 $8.318839 $8318.839
DG418DJ-E3 Product Details

DG418DJ-E3 Overview


Presented in 8-DIP (0.300, 7.62mm), this electrical component is convenient for overseas shipping. High reliability is ensured by the advanced packaging method Tube. Through Hole is where this multiplexer is located. Multiplexer and demultiplexer circuits have a number 1:1. Increasing operating temperature to around -40°C~85°C TA. Totally, there are 8 terminations. A high-quality output is provided by the electrical component's 1 channels. It is safe to turn on and run the electronic component with a 15V voltage supply. A total of 8 pins are injected into the electrical part body. A SPST - NO switching circuit is used for these analog switches. Using the DG418 search parameter, you can discover variants of the switch. In this multiplexer, the internal resistance is 35Ohm. For details about the functions of 8 pins, please refer to the datasheets. There is Multiplexer or Switches analog multiplexer like this in the world. It is generally not recommended to supply a voltage higher than 36V to the switch device in normal circumstances. The digital multiplexer has a low cost Dual, Single supply. 13V is the lowest voltage the electrical component should receive. For this digital switch to work, 1nA current would suffice. Putting voltage greater than 1μA on the multiplexer may cause damage. There is no problem with using dual supply voltage, but it should not exceed 22V. With dual power supplies, you should attach at least 7V. The electrical part can be operated at 15V voltage levels. The 1 inputs need to be operated in order to work. A Drain to Source resistance of 35Ohm is shown for this electronic part.

DG418DJ-E3 Features


1 Channels
Switch Circuit: SPST - NO
1nA Supply Current
Drain-to-Source resistance: 35Ohm


DG418DJ-E3 Applications


There are a lot of Vishay Siliconix
DG418DJ-E3 Analog Switches & Multiplexers ICs applications.


  • Precision data acquisition
  • Battery-powered systems
  • Sample-and-hold systems
  • Communication systems
  • Data Acquisition Systems
  • Relay Replacement
  • Battery Powered Systems
  • Existing multiplexer applications (both fault-protected and nonfault-protected)
  • New designs requiring multiplexer functions
  • Cellular phones

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