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SN74LV1T34DBVRG4

SN74LV1T34DBVRG4

Product Overview

  • Category: Integrated Circuit (IC)
  • Use: Logic Level Translator
  • Characteristics: Low-voltage, Single-bit, Non-inverting Buffer/Driver
  • Package: SOT-23 (Small Outline Transistor)
  • Essence: Translates logic levels between different voltage domains
  • Packaging/Quantity: Tape and Reel, 3000 pieces per reel

Specifications

  • Supply Voltage Range: 1.65V to 5.5V
  • High-level Input Voltage: 2.3V to VCC + 0.5V
  • Low-level Input Voltage: -0.5V to 0.8V
  • High-level Output Voltage: VCC - 0.5V
  • Low-level Output Voltage: 0.5V
  • Maximum Propagation Delay Time: 6.5ns
  • Maximum Operating Frequency: 100MHz

Detailed Pin Configuration

The SN74LV1T34DBVRG4 has a total of 5 pins:

  1. GND (Ground): Connected to the ground reference of the circuit.
  2. A (Input): Logic level input signal.
  3. VCC (Supply Voltage): Power supply pin.
  4. Y (Output): Logic level output signal.
  5. B (Input): Logic level input signal.

Functional Features

  • Non-inverting buffer/driver: The SN74LV1T34DBVRG4 provides a non-inverting translation of logic levels between different voltage domains.
  • Wide supply voltage range: It can operate with a supply voltage as low as 1.65V, making it suitable for low-power applications.
  • Fast propagation delay: With a maximum propagation delay time of 6.5ns, it ensures quick signal transmission.
  • High operating frequency: Capable of handling signals up to 100MHz, making it suitable for high-speed applications.

Advantages and Disadvantages

Advantages: - Wide supply voltage range allows compatibility with various systems. - Small package size (SOT-23) enables space-saving designs. - Non-inverting buffer/driver simplifies signal translation between different voltage domains.

Disadvantages: - Limited number of input/output pins restricts the number of signals that can be translated simultaneously. - Propagation delay may introduce timing issues in certain applications.

Working Principles

The SN74LV1T34DBVRG4 operates by receiving logic level input signals on pins A and B. It then translates these signals to the corresponding logic levels compatible with the supply voltage connected to VCC. The non-inverting buffer/driver ensures that the output signal on pin Y matches the input signal polarity.

Detailed Application Field Plans

The SN74LV1T34DBVRG4 finds applications in various fields, including:

  1. Battery-powered devices: Its low-voltage operation and low power consumption make it suitable for portable electronics.
  2. Communication systems: Used for logic level translation between different voltage domains in data transmission circuits.
  3. Industrial automation: Enables interfacing between different control systems operating at different voltage levels.
  4. Automotive electronics: Facilitates communication between various components with different voltage requirements.

Detailed and Complete Alternative Models

  1. SN74LVC1T34DBVR: Similar to SN74LV1T34DBVRG4 but operates at a wider supply voltage range of 1.65V to 5.5V.
  2. SN74LVC1T45DBVR: Provides bidirectional level translation capability, allowing translation in both directions.
  3. SN74LVC1T125DBVR: Offers additional tri-state output functionality, allowing the output to be disabled when not needed.

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Seznam 10 běžných otázek a odpovědí souvisejících s aplikací SN74LV1T34DBVRG4 v technických řešeních

Sure! Here are 10 common questions and answers related to the application of SN74LV1T34DBVRG4 in technical solutions:

Q1: What is SN74LV1T34DBVRG4? A1: SN74LV1T34DBVRG4 is a single buffer gate with open-drain output, which can be used for level shifting and signal buffering in various electronic circuits.

Q2: What is the operating voltage range of SN74LV1T34DBVRG4? A2: SN74LV1T34DBVRG4 operates within a voltage range of 1.65V to 5.5V.

Q3: What is the maximum output current of SN74LV1T34DBVRG4? A3: The maximum output current of SN74LV1T34DBVRG4 is typically 32mA.

Q4: Can SN74LV1T34DBVRG4 be used for bidirectional level shifting? A4: No, SN74LV1T34DBVRG4 is a unidirectional buffer and cannot be used for bidirectional level shifting.

Q5: What is the propagation delay of SN74LV1T34DBVRG4? A5: The typical propagation delay of SN74LV1T34DBVRG4 is around 6 ns.

Q6: Can SN74LV1T34DBVRG4 tolerate overvoltage on its inputs? A6: Yes, SN74LV1T34DBVRG4 has input protection diodes that can tolerate overvoltage up to VCC + 0.5V.

Q7: Is SN74LV1T34DBVRG4 suitable for high-speed applications? A7: SN74LV1T34DBVRG4 is not specifically designed for high-speed applications, but it can be used in moderate-speed digital circuits.

Q8: Can SN74LV1T34DBVRG4 drive capacitive loads? A8: Yes, SN74LV1T34DBVRG4 can drive small capacitive loads up to a certain limit. However, larger capacitive loads may increase the propagation delay.

Q9: What is the package type of SN74LV1T34DBVRG4? A9: SN74LV1T34DBVRG4 is available in a SOT-23-5 package.

Q10: Are there any recommended decoupling capacitors for SN74LV1T34DBVRG4? A10: It is generally recommended to use a 0.1µF ceramic capacitor placed close to the VCC and GND pins of SN74LV1T34DBVRG4 to provide stable power supply decoupling.

Please note that these answers are general and may vary depending on specific application requirements.