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MAX4310, MAX4311, MAX4312, MAX4313, MAX4314, MAX4315
High-Speed, Low-Power, Single-Supply Multichannel, Video Multiplexer-Amplifiers


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Description
FULL DATA SHEET (PDF, 304kB)
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The MAX4310–MAX4315 single-supply mux-amps combine high-speed operation, low-glitch switching, and excellent video specifications. The six products in this family are differentiated by the number of multiplexer inputs and the gain configuration. The MAX4310/MAX4311/MAX4312 integrate 2-/4-/8-channel multiplexers, respectively, with an adjustable gain amplifier optimized for unity-gain stability. The MAX4313/MAX4314/MAX4315 integrate 2-/4-/8-channel multiplexers, respectively, with a +2V/V fixed-gain amplifier. All devices have 40ns channel switching time and low 10mVp-p switching transients, making them ideal for video-switching applications. They operate from a single +4V to +10.5V supply, or from dual supplies of ±2V to ±5.25V, and they feature Rail-to-Rail outputs and an input common-mode voltage range that extends to the negative supply rail.

The MAX4310/MAX4311/MAX4312 have a -3dB bandwidth of 280MHz/345MHz/265MHz and up to a 460V/µs slew rate. The MAX4313/MAX4314/MAX4315, with 150MHz/127MHz/97MHz -3dB bandwidths up to a 540V/µs slew rate, and a fixed gain of +2V/V, are ideally suited for driving back-terminated cables. Quiescent supply current is as low as 6.1mA, while low-power shutdown mode reduces supply current to as low as 560µA and places the outputs in a high-impedance state. The MAX4310–MAX4315's internal amplifiers maintain an open-loop output impedance of only 8Ω over the full output voltage range, minimizing the gain error and bandwidth changes under loads typical of most rail-to-rail amplifiers. With differential gain and phase errors of 0.06% and 0.08°, respectively, these devices are ideal for broadcast video applications.

Key Features   Applications/Uses
  • Single-Supply Operation Down to +4V
  • 345MHz -3dB Bandwidth (MAX4311)
    150MHz -3dB Bandwidth (MAX4313)
  • 540V/µs Slew Rate (MAX4313)
  • Low 6.1mA Quiescent Supply Current
  • 40ns Channel Switching Time
  • Ultra-Low 10mVp-p Switching Transient
  • 0.06%/0.08° Differential Gain/Phase Error
  • Rail-to-Rail Outputs: Drives 150Ω to within 730mV of the Rails
  • Input Common-Mode Range Includes Negative Rail
  • Low-Power Shutdown Mode
  • Available in Space-Saving 8-Pin µMAX® and 16-Pin QSOP Packages

 
  • 75 Video Cable Drivers
  • Broadcast Video
  • Flash ADC Input Buffers
  • High-Speed Signal Processing
  • Medical Imaging
  • Multimedia Products
  • Video Crosspoint Switching
  • Video Signal Multiplexing

    Key Specifications:   Video Muxes and Crosspoints (Buffered)
    Part Number Functions Inputs Outputs -3dB BW (MHz) 0.1dB BW (MHz) VSUPPLY, Dual (±V) VSUPPLY (±V) Slew Rate (V/µs) Diff. Phase /Diff. Gain (deg./%) Off Isolation (typ) (dB) Crosstalk (typ) (dB) Gain (V/V) EV-Kit RoHS Available Industry Qualified Package Operating Temp. Range (°C) Price**
    MAX4310 
    Mux
    2 1 280 60 5 5 460 0.08/0.06 -82 (10MHz) -95 (10MHz) 1 No Yes Automotive - General SOIC/8
    uMAX/8
    -40 to +85 $2.20 @ 1k
    MAX4311  4 345 40 430 0.08/0.06 -60 (10MHz) 1 QSOP/16
    SOIC/14
    $2.95 @ 1k
    MAX4312  8 265 35 345 0.08/0.06 -52 (10MHz) 1 QSOP/16
    SOIC/16
    $4.45 @ 1k
    MAX4313  2 150 40 540 0.03/0.09 -95 (10MHz) 2 SOIC/8
    uMAX/8
    $2.20 @ 1k
    MAX4314  4 127 78 430 0.03/0.09 -60 (10MHz) 2 QSOP/16
    SOIC/14
    $2.95 @ 1k
    MAX4315  8 97 46 310 0.03/0.09 -52 (10MHz) 2 QSOP/16
    SOIC/16
    $4.45 @ 1k
    See All Video Muxes and Crosspoints (Buffered) (25)
    Notes:
    **This pricing is BUDGETARY, for comparing similar parts. Prices are in U.S. dollars and subject to change. Quantity pricing may vary substantially and international prices may differ due to local duties, taxes, fees, and exchange rates. For volume-specific prices and delivery, please see the price and availability page or contact an authorized distributor.

    Diagram
    MAX4310, MAX4311, MAX4312, MAX4313, MAX4314, MAX4315: Typical Operating Circuit
    Typical Operating Circuit

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    Document Ref.: 19-1379; Rev 3; 2008-03-20
    This page last modified: 2008-03-21



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