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DG406DN-E3

DG406DN-E3

DG406DN-E3

Vishay Siliconix

200ns, 150ns 100Ohm QUAD Analog Switches BREAK-BEFORE-MAKE DG406 28 Pins 500pA 15V 28-LCC (J-Lead)

SOT-23

DG406DN-E3 Datasheet

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Specifications
Name Value
Type Parameter
Factory Lead Time 12 Weeks
Mount Surface Mount
Mounting Type Surface Mount
Package / Case 28-LCC (J-Lead)
Number of Pins 28
Weight 1.182714g
Operating Temperature -40°C~85°C TA
Packaging Tube
Published 2014
JESD-609 Code e3
Pbfree Code yes
Part Status Active
Moisture Sensitivity Level (MSL) 1 (Unlimited)
Number of Terminations 28
Resistance 50Ohm
Terminal Finish Matte Tin (Sn)
Max Power Dissipation 450mW
Technology CMOS
Terminal Position QUAD
Terminal Form J BEND
Peak Reflow Temperature (Cel) 260
Number of Functions 1
Supply Voltage 15V
Time@Peak Reflow Temperature-Max (s) 40
Base Part Number DG406
Pin Count 28
Operating Supply Voltage 15V
Number of Channels 16
Number of Circuits 1
Max Supply Voltage 44V
Min Supply Voltage 7.5V
Operating Supply Current 30μA
Nominal Supply Current 50μA
Power Dissipation 450mW
Max Supply Current 500μA
Propagation Delay 350 ns
Turn On Delay Time 600 ns
Logic Function Multiplexer
Number of Inputs 16
Voltage - Supply, Single/Dual (±) 12V ±5V~20V
Supply Type Dual, Single
Neg Supply Voltage-Nom (Vsup) -15V
Turn-Off Delay Time 300 ns
Max Dual Supply Voltage 20V
On-State Resistance (Max) 100Ohm
Min Dual Supply Voltage 5V
Multiplexer/Demultiplexer Circuit 16:1
Off-state Isolation-Nom 69 dB
Current - Leakage (IS(off)) (Max) 500pA
Channel Capacitance (CS(off), CD(off)) 8pF 130pF
On-state Resistance Match-Nom 5Ohm
Switch Time (Ton, Toff) (Max) 200ns, 150ns
Charge Injection 15pC
Channel-to-Channel Matching (ΔRon) 5 Ω
Switching BREAK-BEFORE-MAKE
Switch-on Time-Max 400ns
Drain to Source Resistance 100Ohm
Signal Current-Max 0.02A
Height 3.69mm
Length 12.57mm
Width 12.57mm
Radiation Hardening No
REACH SVHC No SVHC
RoHS Status ROHS3 Compliant
Lead Free Lead Free
Pricing & Ordering
Quantity Unit Price Ext. Price
1 $6.66000 $6.66
10 $6.02000 $60.2
25 $5.74000 $143.5
100 $4.98400 $498.4
250 $4.76000 $1190
500 $4.34000 $2170
1,000 $3.78000 $3.78
2,500 $3.64000 $7.28
DG406DN-E3 Product Details

DG406DN-E3 Overview


Presented in 28-LCC (J-Lead), this electrical component is convenient for overseas shipping. High reliability is ensured by the advanced packaging method Tube. Surface Mount is where this multiplexer is located. Multiplexer and demultiplexer circuits have a number 16:1. Increasing operating temperature to around -40°C~85°C TA. Totally, there are 28 terminations. A high-quality output is provided by the electrical component's 16 channels. It is safe to turn on and run the electronic component with a 15V voltage supply. A total of 28 pins are injected into the electrical part body. The circuits in this analogue multiplexer number 1. Using the DG406 search parameter, you can discover variants of the switch. In this multiplexer, the internal resistance is 50Ohm. For details about the functions of 28 pins, please refer to the datasheets. It is generally not recommended to supply a voltage higher than 44V to the switch device in normal circumstances. The digital multiplexer has a low cost Dual, Single supply. 7.5V is the lowest voltage the electrical component should receive. For this digital switch to work, 30μA current would suffice. Putting voltage greater than 500μA on the multiplexer may cause damage. There is no problem with using dual supply voltage, but it should not exceed 20V. With dual power supplies, you should attach at least 5V. The electrical part can be operated at 15V voltage levels. The 16 inputs need to be operated in order to work. A Drain to Source resistance of 100Ohm is shown for this electronic part.

DG406DN-E3 Features


16 Channels
30μA Supply Current
Drain-to-Source resistance: 100Ohm


DG406DN-E3 Applications


There are a lot of Vishay Siliconix
DG406DN-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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