Datasheets
AD7506KN by:
Analog Devices Inc
Analog Devices Inc
Rochester Electronics LLC
Not Found

CMOS 8- and 16-Channel Analog Multiplexer

Part Details for AD7506KN by Analog Devices Inc

Results Overview of AD7506KN by Analog Devices Inc

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Applications Education and Research Internet of Things (IoT) Computing and Data Storage Aerospace and Defense Healthcare Telecommunications Automotive

AD7506KN Information

AD7506KN by Analog Devices Inc is a Multiplexer or Switch.
Multiplexers or Switches are under the broader part category of Signal Circuits.

A signal is an electronic means of transmitting information, either as an analog signal with continuous values or a digital signal with discrete values. Signals are used in various systems and networks. Read more about Signal Circuits on our Signal Circuits part category page.

Price & Stock for AD7506KN

Part # Distributor Description Stock Price Buy
Bristol Electronics   9
RFQ
Quest Components IC,ANALOG MUX,SINGLE,16-CHANNEL,CMOS,DIP,28PIN,PLASTIC 7
  • 1 $32.9100
$32.9100 Buy Now
Quest Components IC,ANALOG MUX,SINGLE,16-CHANNEL,CMOS,DIP,28PIN,PLASTIC 1
  • 1 $42.5278
$42.5278 Buy Now
Rochester Electronics Single-Ended Multiplexer, 1 Func, 16 Channel, CMOS, PDIP28 ' RoHS: Not Compliant Status: Obsolete Min Qty: 1 433
  • 25 $23.2300
  • 100 $22.0700
  • 500 $20.9100
  • 1,000 $19.7500
  • 10,000 $18.5800
$18.5800 / $23.2300 Buy Now

Part Details for AD7506KN

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AD7506KN Part Data Attributes

AD7506KN Analog Devices Inc
Buy Now Datasheet
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AD7506KN Analog Devices Inc CMOS 8- and 16-Channel Analog Multiplexer
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Pbfree Code No
Rohs Code No
Part Life Cycle Code Obsolete
Ihs Manufacturer ANALOG DEVICES INC
Part Package Code DIP
Package Description DIP-28
Pin Count 28
Manufacturer Package Code N-28-2
Reach Compliance Code not_compliant
HTS Code 8542.39.00.01
Analog IC - Other Type SINGLE-ENDED MULTIPLEXER
JESD-30 Code R-PDIP-T28
JESD-609 Code e0
Length 37.4 mm
Neg Supply Voltage-Nom (Vsup) -15 V
Number of Channels 16
Number of Functions 1
Number of Terminals 28
Off-state Isolation-Nom 70 dB
On-state Resistance Match-Nom 12 Ω
On-state Resistance-Max (Ron) 450 Ω
Operating Temperature-Max 70 °C
Operating Temperature-Min
Package Body Material PLASTIC/EPOXY
Package Code DIP
Package Equivalence Code DIP28,.6
Package Shape RECTANGULAR
Package Style IN-LINE
Qualification Status Not Qualified
Seated Height-Max 6.35 mm
Signal Current-Max 0.02 A
Supply Current-Max (Isup) 1 mA
Supply Voltage-Nom (Vsup) 15 V
Surface Mount NO
Switch-off Time-Max 1000 ns
Switch-on Time-Max 1500 ns
Switching BREAK-BEFORE-MAKE
Technology CMOS
Temperature Grade COMMERCIAL
Terminal Finish TIN LEAD
Terminal Form THROUGH-HOLE
Terminal Pitch 2.54 mm
Terminal Position DUAL
Width 15.24 mm

Alternate Parts for AD7506KN

This table gives cross-reference parts and alternative options found for AD7506KN. The Form Fit Function (FFF) tab will give you the options that are more likely to serve as direct pin-to-pin alternates or drop-in parts. The Functional Equivalents tab will give you options that are likely to match the same function of AD7506KN, but it may not fit your design. Always verify details of parts you are evaluating, as these parts are offered as suggestions for what you are looking for and are not guaranteed.

Part Number Manufacturer Composite Price Description Compare
MX7506KN Maxim Integrated Products Check for Price Single-Ended Multiplexer, 1 Func, 16 Channel, CMOS, CDIP28, 0.600 INCH, CERAMIC, DIP-28 AD7506KN vs MX7506KN
AD7506KNZ Analog Devices Inc Check for Price CMOS 8- and 16-Channel Analog Multiplexer AD7506KN vs AD7506KNZ
AD7506TQ Analog Devices Inc Check for Price IC 16-CHANNEL, SGL ENDED MULTIPLEXER, CDIP28, CERDIP-28, Multiplexer or Switch AD7506KN vs AD7506TQ
MX7506SQ Maxim Integrated Products Check for Price Single-Ended Multiplexer, 1 Func, 16 Channel, CMOS, CDIP28, 0.600 INCH, CERAMIC, DIP-28 AD7506KN vs MX7506SQ
AD7506TQ/883B Rochester Electronics LLC Check for Price 16-CHANNEL, SGL ENDED MULTIPLEXER, CDIP28, CERDIP-28 AD7506KN vs AD7506TQ/883B
MX7506JN Maxim Integrated Products Check for Price Single-Ended Multiplexer, 1 Func, 16 Channel, CMOS, CDIP28, 0.600 INCH, CERAMIC, DIP-28 AD7506KN vs MX7506JN
Part Number Manufacturer Composite Price Description Compare
MX7506KQ Maxim Integrated Products Check for Price Single-Ended Multiplexer, 1 Func, 16 Channel, CMOS, CDIP28, 0.600 INCH, CERAMIC, DIP-28 AD7506KN vs MX7506KQ
MX7506TQ Maxim Integrated Products Check for Price Single-Ended Multiplexer, 1 Func, 16 Channel, CMOS, CDIP28, 0.600 INCH, CERAMIC, DIP-28 AD7506KN vs MX7506TQ
ADG507AKRZ-REEL Analog Devices Inc Check for Price CMOS ± 15 V 8 Channel Analog Multiplexer AD7506KN vs ADG507AKRZ-REEL
MAX336EWI-T Maxim Integrated Products Check for Price Single-Ended Multiplexer, 1 Func, 16 Channel, CMOS, PDSO28, 0.300 INCH, SOIC-28 AD7506KN vs MAX336EWI-T
MX7507SQ Maxim Integrated Products Check for Price Differential Multiplexer, 1 Func, 8 Channel, CMOS, CDIP28, CERDIP-28 AD7506KN vs MX7507SQ
MUX28BT Precision Monolithics Inc Check for Price Differential Multiplexer, 1 Func, 8 Channel, CDIP28, AD7506KN vs MUX28BT
MX7507KN Maxim Integrated Products Check for Price Differential Multiplexer, 1 Func, 8 Channel, CMOS, PDIP28, PLASTIC, DIP-28 AD7506KN vs MX7507KN
HI4-0547/883 Renesas Electronics Corporation Check for Price Single 16/Differential 8-Channel CMOS Analog Multiplexers with Active Overvoltage Protection, CLCC, /Tube AD7506KN vs HI4-0547/883
5962-8771701XB Precision Monolithics Inc Check for Price Single-Ended Multiplexer, 1 Func, 16 Channel, BIPolar, CDIP28, CERAMIC, DIP-28 AD7506KN vs 5962-8771701XB
MX7507JN Maxim Integrated Products Check for Price Differential Multiplexer, 1 Func, 8 Channel, CMOS, PDIP28, PLASTIC, DIP-28 AD7506KN vs MX7507JN

AD7506KN Related Parts

AD7506KN Frequently Asked Questions (FAQ)

  • The AD7506KN is a high-speed, high-precision ADC, and as such, it requires careful layout and placement to minimize noise and ensure optimal performance. It is recommended to follow the layout guidelines provided in the datasheet, including keeping the analog and digital grounds separate, using a solid ground plane, and placing the ADC close to the analog signal sources. Additionally, it is recommended to use a low-noise, low-impedance power supply, and to decouple the power supply lines with high-quality capacitors.

  • The AD7506KN has an internal calibration circuit that can be used to calibrate the ADC. The calibration process involves applying a known input voltage to the ADC and then using the calibration registers to adjust the ADC's gain and offset to achieve the best possible accuracy. The calibration process should be performed at the operating temperature range of the system, and it is recommended to recalibrate the ADC periodically to maintain optimal performance.

  • The AD7506KN can operate at sampling rates up to 1 MSPS, but the maximum achievable sampling rate depends on the specific application and the quality of the analog input signal. The limitations include the analog input bandwidth, the digital clock frequency, and the settling time of the ADC. It is recommended to consult the datasheet and application notes for more information on how to optimize the sampling rate for a specific application.

  • The AD7506KN has a serial interface that can be interfaced with a microcontroller or FPGA using a variety of communication protocols, including SPI, I2C, and parallel interfaces. The recommended communication protocol depends on the specific application and the requirements for data transfer rate and complexity. It is recommended to consult the datasheet and application notes for more information on how to interface the AD7506KN with a microcontroller or FPGA.

  • The AD7506KN has a typical power consumption of 35 mW at 1 MSPS, and the power consumption can be optimized by reducing the sampling rate, using the power-down mode, and optimizing the analog input signal. The thermal characteristics of the AD7506KN include a junction-to-ambient thermal resistance of 30°C/W, and it is recommended to use a heat sink or thermal pad to dissipate heat in high-temperature applications. For battery-powered applications, it is recommended to use a low-power mode, reduce the sampling rate, and optimize the power supply to minimize power consumption.