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SN74AVC1T45DBVR
+NomenclatureIC TRNSLTR BIDIRECTIONAL SOT23-6
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FabricantTexas Instruments
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Pièce fabricant #SN74AVC1T45DBVR
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Package SOT-23 (DBV)-6
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En stock3968
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Spécifications
| Attribut | Valeur |
| Package | Tape & Reel (TR),Cut Tape (CT),Bulk |
| Series | 74AVC |
| ProductStatus | Active |
| TranslatorType | Voltage Level |
| ChannelType | Bidirectional |
| NumberofCircuits | 1 |
| ChannelsperCircuit | 1 |
| Voltage-VCCA | 1.2 V ~ 3.6 V |
| Voltage-VCCB | 1.2 V ~ 3.6 V |
| OutputType | Tri-State, Non-Inverted |
| DataRate | 500Mbps |
| OperatingTemperature | -40°C ~ 85°C (TA) |
| MountingType | Surface Mount |
| Package/Case | SOT-23-6 |
Présentation
Description
Key features include a high-speed data transfer rate, low power consumption, and robust electrostatic discharge (ESD) protection. The SN74AVC1T45DBVR supports auto-direction sensing, eliminating the need for a direction control pin, which simplifies design and reduces pin count. It is ideal for applications like mobile devices, computing, and any system requiring the bridging of different logic levels.
Housed in a small, space-efficient SOT-23-6 package, it suits compact circuit designs. The device supports push-pull architecture, ensuring fast output switching. Overall, the SN74AVC1T45DBVR is a versatile and efficient solution for voltage level translation in digital circuits.
Equivalent
1. NXP Semiconductor's 74AVC1T45
2. ON Semiconductor's NLVVC1T45
3. Microchip Technology's MIC93051
These alternatives offer similar functionalities, including bidirectional voltage level shifting and compatibility with various logic families. Always check the datasheets to ensure specific requirements like speed, voltage levels, and package type are met.
Features
1. Voltage Range: Supports a wide operating voltage range from 1.2V to 3.6V on both V_CCA and V_CCB sides, allowing translation between different logic levels.
2. Direction Control: Features a direction-control input (DIR) to determine the data flow direction.
3. High-Speed Operation: Offers fast propagation times, making it suitable for high-speed applications.
4. Low Power Consumption: Consumes minimal power due to low static and dynamic current.
5. OE Input: Has an output-enable (OE) input that allows the device to be disabled, reducing power consumption further.
6. Small Package: Available in a compact SOT-23 package, ideal for space-constrained designs.
7. Protection: Includes features like power-down protection on inputs and outputs to protect against damage during power sequencing.
These features make the SN74AVC1T45DBVR suitable for applications requiring high-speed data communication and voltage translation between different logic levels.
Pinout
- Pin Count: The SN74AVC1T45DBVR comes in a 6-pin SOT-23 package.
- Pin Functions:
1. VCCA (Pin 1): Supply voltage for A port. It can range from 1.2 V to 3.6 V.
2. GND (Pin 2): Ground pin.
3. A (Pin 3): Data input/output port A. Voltage level of this port is determined by VCCA.
4. DIR (Pin 4): Direction control input. Determines the direction of data flow. If DIR is high, data flows from A to B. If DIR is low, data flows from B to A.
5. B (Pin 5): Data input/output port B. Voltage level of this port is determined by VCCB.
6. VCCB (Pin 6): Supply voltage for B port. It can also range from 1.2 V to 3.6 V.
This device provides bidirectional level shifting and is commonly used in applications requiring voltage translation and interfacing between different logic levels.
Manufacturer
Application
1. Consumer Electronics: Facilitates communication between components operating at different voltage levels in devices like smartphones, tablets, and laptops.
2. Industrial Systems: Used in automation equipment where there is a need to interface between different logic levels.
3. Communication Equipment: Helps in transmitting signals between varying voltage domains in networking devices.
4. Embedded Systems: Useful in microcontroller designs where interfacing with peripherals of different voltage requirements is necessary.
5. IoT Devices: Enables connectivity between sensors and processors with different supply voltages.
Its ability to translate between different logic levels makes it versatile for these applications.