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NEW TLV1814-Q1 ACTIVE Automotive, quad, micropower high-voltage push-pull comparator Improved performance: wider supply voltage, lower offset voltage and faster speed
NEW TLV1824-Q1 ACTIVE Automotive, quad, micropower high-voltage open-drain comparator Improved performance: wider supply voltage, lower offset voltage and faster speed

Product details

Number of channels 4 Output type Open-collector, Open-drain Propagation delay time (µs) 8 Vs (max) (V) 30 Vs (min) (V) 3 Rating Automotive Iq per channel (typ) (mA) 0.015 Vos (offset voltage at 25°C) (max) (mV) 5 Rail-to-rail In to V- Operating temperature range (°C) -40 to 85 Input bias current (±) (max) (nA) 25 VICR (max) (V) 28.5 VICR (min) (V) 0
Number of channels 4 Output type Open-collector, Open-drain Propagation delay time (µs) 8 Vs (max) (V) 30 Vs (min) (V) 3 Rating Automotive Iq per channel (typ) (mA) 0.015 Vos (offset voltage at 25°C) (max) (mV) 5 Rail-to-rail In to V- Operating temperature range (°C) -40 to 85 Input bias current (±) (max) (nA) 25 VICR (max) (V) 28.5 VICR (min) (V) 0
SOIC (D) 14 51.9 mm² 8.65 x 6
  • Qualified for Automotive Applications
  • Wide Supply-Voltage Range . . . 3 V to 30 V
  • Ultra-Low Power-Supply Current
    Drain . . . 60 µA Typ
  • Low Input Biasing Current . . . 3 nA
  • Low Input Offset Current . . . ±0.5 nA
  • Low Input Offset Voltage . . . ±2 mV
  • Common-Mode Input Voltage Includes Ground
  • Output Voltage Compatible With MOS and CMOS Logic
  • High Output Sink-Current Capability
    (30 mA at VO = 2 V)
  • Power-Supply Input Reverse Voltage Protected
  • Single Power-Supply Operation
  • Pin-for-Pin Compatible With LM239, LM339, LM2901

  • Qualified for Automotive Applications
  • Wide Supply-Voltage Range . . . 3 V to 30 V
  • Ultra-Low Power-Supply Current
    Drain . . . 60 µA Typ
  • Low Input Biasing Current . . . 3 nA
  • Low Input Offset Current . . . ±0.5 nA
  • Low Input Offset Voltage . . . ±2 mV
  • Common-Mode Input Voltage Includes Ground
  • Output Voltage Compatible With MOS and CMOS Logic
  • High Output Sink-Current Capability
    (30 mA at VO = 2 V)
  • Power-Supply Input Reverse Voltage Protected
  • Single Power-Supply Operation
  • Pin-for-Pin Compatible With LM239, LM339, LM2901

The LP2901 is a low-power quadruple differential comparator. The device consists of four independent voltage comparators designed specifically to operate from a single power supply and, typically, to draw 60-µA drain current over a wide range of voltages. Operation from split power supplies also is possible, and the ultra-low power-supply drain current is independent of the power-supply voltage.

Applications include limit comparators, simple analog-to-digital converters, pulse generators, square-wave generators, time-delay generators, voltage-controlled oscillators, multivibrators, and high-voltage logic gates. The LP2901 is designed specifically to interface with the CMOS logic family. The ultra-low power-supply current makes these products desirable in battery-powered applications.

The LP2901 is characterized for operation from –40°C to 85°C.

The LP2901 is a low-power quadruple differential comparator. The device consists of four independent voltage comparators designed specifically to operate from a single power supply and, typically, to draw 60-µA drain current over a wide range of voltages. Operation from split power supplies also is possible, and the ultra-low power-supply drain current is independent of the power-supply voltage.

Applications include limit comparators, simple analog-to-digital converters, pulse generators, square-wave generators, time-delay generators, voltage-controlled oscillators, multivibrators, and high-voltage logic gates. The LP2901 is designed specifically to interface with the CMOS logic family. The ultra-low power-supply current makes these products desirable in battery-powered applications.

The LP2901 is characterized for operation from –40°C to 85°C.

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* Data sheet Low-Power Quad Differential Comparator datasheet (Rev. A) 24 Apr 2008
E-book The Signal e-book: A compendium of blog posts on op amp design topics 28 Mar 2017

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