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Integrated Circuits (ICs)

SN74ALVC164245DGG

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Texas Instruments

16-BIT 2.5-V TO 3.3-V/3.3-V TO 5-V LEVEL SHIFTING TRANSCEIVER WITH 3-STATE OUTPUTS

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Product Image
Integrated Circuits (ICs)

SN74ALVC164245DGG

Active
Texas Instruments

16-BIT 2.5-V TO 3.3-V/3.3-V TO 5-V LEVEL SHIFTING TRANSCEIVER WITH 3-STATE OUTPUTS

Technical Specifications

Parameters and characteristics for this part

SpecificationSN74ALVC164245DGG
Channel TypeBidirectional
Channels per Circuit8
Mounting TypeSurface Mount
Number of Circuits2
Operating Temperature [Max]85 °C
Operating Temperature [Min]-40 °C
Output TypeTri-State, Non-Inverted
Package / Case48-TFSOP
Package / Case0.24 in
Package / Case [custom]6.1 mm
Supplier Device Package48-TSSOP
Translator TypeVoltage Level
Voltage - VCCA [Max] [custom]3.6 V
Voltage - VCCA [Min] [custom]2.3 V
Voltage - VCCB [Max]5.5 V
Voltage - VCCB [Min]3 V

Pricing

Prices provided here are for design reference only. For realtime values and availability, please visit the distributors directly

DistributorPackageQuantity$
DigikeyTube 1$ 2.76
10$ 2.48
40$ 2.35
120$ 2.03
280$ 1.93
520$ 1.73
1000$ 1.46
2520$ 1.39
5000$ 1.33
LCSCPiece 1$ 0.43
10$ 0.42
30$ 0.41
100$ 0.40
Texas InstrumentsTUBE 1$ 2.31
100$ 1.91
250$ 1.37
1000$ 1.03

Description

General part information

SN74ALVC164245 Series

This 16-bit (dual-octal) noninverting bus transceiver contains two separate supply rails. B port has VCCB, which is set to operate at 3.3 V and 5 V. A port has VCCA, which is set to operate at 2.5 V and 3.3 V. This allows for translation from a 2.5-V to a 3.3-V environment, and vice versa, or from a 3.3-V to a 5-V environment, and vice versa.

The SN74ALVC164245 is designed for asynchronous communication between data buses. The control circuitry (1DIR, 2DIR, 1OE, and 2OE) is powered by VCCA.

To ensure the high-impedance state during power up or power down, the output-enable (OE) input should be tied to VCCthrough a pullup resistor; the minimum value of the resistor is determined by the current-sinking capability of the driver.

Documents

Technical documentation and resources

Logic Guide

Datasheet

Benefits & Issues of Migrating 5-V and 3.3-V Logic to Lower-Voltage Supplies (Rev. A)

Application note

Schematic Checklist - A Guide to Designing with Auto-Bidirectional Translators

Application note

Schematic Checklist - A Guide to Designing With Fixed or Direction Control Translators

Application note

ALVC Advanced Low-Voltage CMOS Including SSTL, HSTL, And ALB (Rev. B)

User guide

LOGIC Pocket Data Book (Rev. B)

User guide

Understanding Transient Drive Strength vs. DC Drive Strength in Level-Shifters (Rev. A)

Application note

Input and Output Characteristics of Digital Integrated Circuits

Application note

TI IBIS File Creation, Validation, and Distribution Processes

Application note

Migration From 3.3-V To 2.5-V Power Supplies For Logic Devices

Application note

Logic Solutions for PC-100 SDRAM Registered DIMMs (Rev. A)

Application note

CMOS Power Consumption and CPD Calculation (Rev. B)

Application note

Understanding and Interpreting Standard-Logic Data Sheets (Rev. C)

Application note

TI SN74ALVC16835 Component Specification Analysis for PC100

Application note

SN74ALVC164245 16-Bit 2.5-V to 3.3-V or 3.3-V to 5-V Level-Shifting Transceiver With 3-State Outputs datasheet (Rev. Q)

Data sheet

Standard Linear & Logic for PCs, Servers & Motherboards

More literature

Understanding Advanced Bus-Interface Products Design Guide

Application note

16-Bit Widebus Logic Families in 56-Ball, 0.65-mm Pitch Very Thin Fine-Pitch BGA (Rev. B)

Application note

Bus-Interface Devices With Output-Damping Resistors Or Reduced-Drive Outputs (Rev. A)

Application note

Voltage Translation Buying Guide (Rev. A)

Selection guide

Semiconductor Packing Material Electrostatic Discharge (ESD) Protection

Application note

Live Insertion

Application note