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TLV3701QDBVRQ1
+StücklisteIC COMPARATR NANOPWR P-P SOT23-5
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HerstellerTexas Instruments
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Herstellerteil #TLV3701QDBVRQ1
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Paket SOT-23-5
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Auf Lager5742
365 Tage Qualitätsgarantie
7*24 Stunden-Servicegarantie
90-Tage Kundendienstgarantie
Originalproduktgarantie
Spezifikationen
| Attribut | Wert |
| Package / Case | Tape & Reel (TR),Cut Tape (CT),Bulk |
| Series | Automotive, AEC-Q100 |
| Part Status | Active |
| Type | General Purpose |
| Number of Elements | 1 |
| Output Type | CMOS, Push-Pull, Rail-to-Rail |
| Voltage - Supply, Single/Dual (±) | 2.7V ~ 16V, ±1.35V ~ 8V |
| Voltage - Input Offset (Max) | 5mV @ 5V |
| Current - Input Bias(Max) | 250pA @ 5V |
| Current - Output (Typ) | 10mA |
| Current - Quiescent (Max) | 1.2µA |
| CMRRPSRR(Typ) | 88dB CMRR, 105dB PSRR |
| Propagation Delay(Max) | 240µs |
| Operating Temperature | -40°C ~ 125°C |
| Mounting Type | Surface Mount |
Übersicht
Description
Key features include a low supply current of 5.5 µA, making it suitable for battery-powered designs. The TLV3701QDBVRQ1 offers a push-pull output stage and a typical response time of 6 µs, allowing for quick and efficient signal processing. Its small SOT-23 package size enhances design flexibility in space-constrained applications.
The comparator is also known for its low input bias current and low offset voltage, which contribute to high precision in signal comparison tasks. Overall, the TLV3701QDBVRQ1 is ideal for applications requiring low power consumption, precise voltage comparison, and reliable performance in harsh environments.
Equivalent
1. LMV7219 from Texas Instruments
2. MCP6541 from Microchip Technology
3. MAX9028 from Maxim Integrated
4. TL331 from Texas Instruments (for automotive applications)
5. NCV2901 from ON Semiconductor
These alternatives may have slight variations in specifications, so it’s important to compare their parameters to ensure suitability for your specific application.
Features
1. Low Power Consumption: It operates with ultra-low supply current, typically 560 nA, making it ideal for battery-powered and energy-efficient applications.
2. Wide Supply Voltage Range: The comparator functions over a wide supply voltage range from 2.7 V to 16 V.
3. Fast Response Time: It offers a fast propagation delay of 4 µs at 5 V, which is suitable for high-speed signal processing.
4. Push-Pull Output: The push-pull output stage eliminates the need for external pull-up resistors, simplifying design and reducing component count.
5. Rail-to-Rail Input: It features a rail-to-rail input common-mode range, enhancing flexibility in interfacing with various signal levels.
6. Automotive-Grade Reliability: The device is AEC-Q100 qualified, ensuring high reliability for automotive applications.
7. Temperature Range: It operates over a wide temperature range from -40°C to 125°C, supporting harsh environment conditions.
These features make the TLV3701QDBVRQ1 suitable for low-power, high-speed, and reliable applications in automotive and other sectors.
Pinout
1. Pin 1 (OUT): Output - This pin provides the comparator output. The output is open-drain, meaning it requires a pull-up resistor to a positive voltage for proper operation.
2. Pin 2 (V+ or VDD): Positive Supply Voltage - This pin is connected to the positive power supply voltage.
3. Pin 3 (IN- or IN–): Inverting Input - The non-inverting input signal is connected to this pin. The comparator compares the voltage at this pin with the non-inverting input.
4. Pin 4 (IN+ or IN+): Non-inverting Input - The inverting input signal is connected to this pin. It is compared against the voltage at the inverting input.
5. Pin 5 (GND or V-): Ground or Negative Supply Voltage - This pin is connected to the ground or the negative power supply voltage.
The TLV3701QDBVRQ1 is designed for automotive applications due to its AEC-Q100 qualification and operates over a wide supply voltage range.
Manufacturer
Application
1. Automotive Systems: Used in battery management, sensor signal monitoring, and electronic control units for precise voltage comparison.
2. Industrial Controls: Employed in automation systems for monitoring and control tasks.
3. Consumer Electronics: Utilized in low-power consumer devices for efficient power management.
4. Communications Equipment: Used in signal conditioning and threshold detection.
5. Safety Systems: Implemented in applications requiring rapid response and high reliability.
Its robust performance across a wide temperature range makes it suitable for harsh environments.