Details

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Parameter Symbol Conditions Min Typ Max Unit
Supply Voltage VCC Operating Range 2.7 - 5.5 V
Quiescent Current IQ VCC = 3.3V, No Load - 100 - 渭A
Output Current IOUT Continuous - 10 30 mA
Input Offset Voltage VIO VCC = 3.3V - 1 5 mV
Input Bias Current IIB VCC = 3.3V - 0.5 2 nA
Common-Mode Rejection Ratio CMRR VCC = 3.3V 80 - 100 dB
Power Supply Rejection Ratio PSRR VCC = 3.3V 80 - 100 dB
Slew Rate SR VCC = 3.3V - 0.5 1 V/渭s
Bandwidth BW VCC = 3.3V, G = 1 - 1 10 MHz
Operating Temperature Range TOP - -40 - 125 掳C
Storage Temperature Range TSTG - -65 - 150 掳C

Instructions for Use:

  1. Supply Voltage: Ensure the supply voltage (VCC) is within the operating range of 2.7V to 5.5V.
  2. Quiescent Current: The quiescent current is typically 100 渭A at 3.3V with no load. Ensure the power supply can handle this current.
  3. Output Current: The output current should not exceed 30 mA continuously. For optimal performance, keep it below 10 mA.
  4. Input Offset Voltage: The input offset voltage is typically 1 mV and can vary up to 5 mV. This can affect precision applications.
  5. Input Bias Current: The input bias current is typically 0.5 nA and can go up to 2 nA. This is important for high-impedance circuits.
  6. Common-Mode Rejection Ratio (CMRR): The CMRR is between 80 dB and 100 dB, indicating good rejection of common-mode signals.
  7. Power Supply Rejection Ratio (PSRR): The PSRR is also between 80 dB and 100 dB, indicating good rejection of power supply noise.
  8. Slew Rate: The slew rate is typically 0.5 V/渭s and can go up to 1 V/渭s. This affects the ability to follow fast-changing signals.
  9. Bandwidth: The bandwidth is typically 1 MHz and can go up to 10 MHz at a gain of 1. Higher gains will reduce the bandwidth.
  10. Operating Temperature Range: The device operates reliably from -40掳C to 125掳C.
  11. Storage Temperature Range: The device can be stored from -65掳C to 150掳C without damage.

Additional Notes:

  • Always use appropriate decoupling capacitors (typically 0.1 渭F and 10 渭F) close to the power pins to ensure stability and reduce noise.
  • For high-frequency applications, consider using a low-inductance layout and short trace lengths.
  • Ensure proper thermal management if operating at high temperatures or high power levels.
(For reference only)

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