Produktdetails

Operating temperature range (°C) -40 to 85 Rating Catalog
Operating temperature range (°C) -40 to 85 Rating Catalog
LQFP (NEY) 32 81 mm² 9 x 9

  • Low power consumption
  • Shutdown function
  • No added processing delay
  • Differential inputs and outputs
  • Automatic calibration
  • Adjustable 6 - 48dB gain
  • Excellent RF immunity
  • Space-saving 36–bump micro SMD package

  • Low power consumption
  • Shutdown function
  • No added processing delay
  • Differential inputs and outputs
  • Automatic calibration
  • Adjustable 6 - 48dB gain
  • Excellent RF immunity
  • Space-saving 36–bump micro SMD package

  • The LMV1089 is a fully analog dual differential input, differential output, microphone array amplifier designed to reduce background acoustic noise, while delivering superb speech clarity in voice communication applications.

    The LMV1089 preserves near-field voice signals within 4cm of the microphones while rejecting far-field acoustic noise greater than 50cm from the microphones. Up to 20dB of far-field rejection is possible in a properly configured and calibrated system.

    Part of the Powerwise™ family of energy efficient solutions, the LMV1089 consumes only 1.1mA of supply current providing superior performance over DSP solutions consuming greater than ten times the power.

    A quick calibration during the manufacturing test process of the product containing the LMV1089 compensates the entire microphone system. This calibration compensates for mismatch in microphone gain and frequency response, as well as acoustical path variances. The LMV1089 stores the calibration coefficients in the on-chip EEPROM. The calibration is initiated by an I 2C command or by a logic pin control.

    The dual microphone inputs and the processed signal output are differential to provide excellent noise immunity. The microphones are biased with an internal low-noise bias supply.


    Key Specifications

    Far Field Noise Suppression  (Electrical), (f = 1kHz) 37dB
    Supply Voltage 2.7V to 5.5V
    Supply Current 1.1mA (typ)
    Standby Current 0.7µA (typ)
    Signal-to-Noise Ratio (A-weighted) 65dB (typ)
    Total Harmonic Distortion + Noise 0.1% (typ)
    PSRR (217Hz) 96dB (typ)

    The LMV1089 is a fully analog dual differential input, differential output, microphone array amplifier designed to reduce background acoustic noise, while delivering superb speech clarity in voice communication applications.

    The LMV1089 preserves near-field voice signals within 4cm of the microphones while rejecting far-field acoustic noise greater than 50cm from the microphones. Up to 20dB of far-field rejection is possible in a properly configured and calibrated system.

    Part of the Powerwise™ family of energy efficient solutions, the LMV1089 consumes only 1.1mA of supply current providing superior performance over DSP solutions consuming greater than ten times the power.

    A quick calibration during the manufacturing test process of the product containing the LMV1089 compensates the entire microphone system. This calibration compensates for mismatch in microphone gain and frequency response, as well as acoustical path variances. The LMV1089 stores the calibration coefficients in the on-chip EEPROM. The calibration is initiated by an I 2C command or by a logic pin control.

    The dual microphone inputs and the processed signal output are differential to provide excellent noise immunity. The microphones are biased with an internal low-noise bias supply.


    Key Specifications

    Far Field Noise Suppression  (Electrical), (f = 1kHz) 37dB
    Supply Voltage 2.7V to 5.5V
    Supply Current 1.1mA (typ)
    Standby Current 0.7µA (typ)
    Signal-to-Noise Ratio (A-weighted) 65dB (typ)
    Total Harmonic Distortion + Noise 0.1% (typ)
    PSRR (217Hz) 96dB (typ)

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    Technische Dokumentation

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    Typ Titel Datum
    * Data sheet Dual Input, Far Field Noise Suppression Microphone Amp w/ Auto Calibration datasheet (Rev. H) 19 Mai 2010
    EVM User's guide LMV1089 Noise Supp Microphne Amp Demo Brd UG (Rev. B) 01 Mai 2013

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