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ADG736BRM

ADG736BRM

ADG736BRM

Hotenda

12ns, 5ns (Typ) SPDT 4Ohm DUAL Analog Switches BREAK-BEFORE-MAKE ADG736 10 Pins 10pA Typ 3V 10-TFSOP, 10-MSOP (0.118, 3.00mm Width)

SOT-23

ADG736BRM Datasheet PDF

non-compliant

Technical Specifications

Parameter NameValue
TypeParameter
Contact PlatingLead, Tin
Mount Surface Mount
Mounting Type Surface Mount
Package / Case 10-TFSOP, 10-MSOP (0.118, 3.00mm Width)
Number of Pins 10
Operating Temperature-40°C~125°C TA
PackagingTube
JESD-609 Code e0
Pbfree Code no
Part StatusObsolete
Moisture Sensitivity Level (MSL) 1 (Unlimited)
Number of Terminations 10
ECCN Code EAR99
Resistance 4Ohm
Terminal Finish Tin/Lead (Sn85Pb15)
Subcategory Multiplexer or Switches
Max Power Dissipation315mW
Technology CMOS
Terminal Position DUAL
Terminal FormGULL WING
Peak Reflow Temperature (Cel) 240
Number of Functions 2
Supply Voltage 3V
Terminal Pitch0.5mm
Time@Peak Reflow Temperature-Max (s) 20
Base Part Number ADG736
Pin Count10
Number of Outputs 4
Polarity Non-Inverting
Power Supplies3/5V
Number of Channels 2
Interface Parallel
Max Supply Voltage5.5V
Min Supply Voltage1.8V
Operating Supply Current 1nA
Nominal Supply Current1μA
Power Dissipation5μW
Max Supply Current 1μA
Turn On Delay Time16 ns
Supply Type Single
Bandwidth 200MHz
Turn-Off Delay Time 8 ns
On-State Resistance (Max) 4Ohm
High Level Output Current30mA
Multiplexer/Demultiplexer Circuit 2:1
Off-state Isolation-Nom 62 dB
Current - Leakage (IS(off)) (Max) 10pA Typ
Channel Capacitance (CS(off), CD(off)) 9pF
On-state Resistance Match-Nom 0.1Ohm
Switch CircuitSPDT
Switch Time (Ton, Toff) (Max) 12ns, 5ns (Typ)
Channel-to-Channel Matching (ΔRon) 100m Ω
Crosstalk -82dB @ 1MHz
Switching BREAK-BEFORE-MAKE
Voltage - Supply, Single (V+) 1.8V~5.5V
Signal Current-Max 0.03A
Height 850μm
Length 3mm
Width 3mm
Radiation HardeningNo
RoHS StatusNon-RoHS Compliant
Lead Free Contains Lead
In-Stock:4444 items

Pricing & Ordering

QuantityUnit PriceExt. Price
1$2.936498$2.936498
10$2.770282$27.70282
100$2.613473$261.3473
500$2.465540$1232.77
1000$2.325982$2325.982

ADG736BRM Product Details

ADG736BRM Overview


Shipping overseas is convenient due to the electrical component's packing in 10-TFSOP, 10-MSOP (0.118, 3.00mm Width). This packaging method provides high reliability because it uses advanced packaging techniques. Multiplexers like this are mounted in the Surface Mount position. Multiplexers and demultiplexers have a number of circuits 2:1. Operational temperature extended around -40°C~125°C TA. 10 terminations have been made so far. Due to its 2 channels, the electrical component produces high-quality output. When a voltage supply of 3V is used, the electronic component should be turned on and run. It is injected into the electrical part body with 10 pins. Multiplexers built on a SPDT switching circuit are built. Try searching for the analog switch ic with ADG736 if you are looking for variants. As far as internal resistance is concerned, it has 4Ohm. To find out what the functions of 10 pins are, please refer to their datasheets. In this analog multiplexer, the value is Multiplexer or Switches. Users shouldn't supply more than 5.5V voltage to the switch device. An effective Single supply digital multiplexer. It is recommended that the electrical component receives a voltage of 1.8V. This digital switch can be operated with a current of 1nA. This analogue multiplexer requires a voltage of 1.8V~5.5V when it drains from a single voltage supply. Put voltage above 1μA on the multiplexer to cause damage. 200MHz-bandwidths can be used to transfer data between multiplexers. An output of 4 is provided by the digital multiplexer.

ADG736BRM Features


2 Channels
Switch Circuit: SPDT
1nA Supply Current
Bandwidth: 200MHz


ADG736BRM Applications


There are a lot of Analog Devices Inc.
ADG736BRM Analog Switches & Multiplexers ICs applications.


  • Automatic test equipment
  • 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

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