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SN74LVC14ADGVR

Active
Texas Instruments

6-CH, 2-V TO 3.6-V INVERTERS WITH SCHMITT-TRIGGER INPUTS

SN74LVC14ADGVR - https://ti.com/content/dam/ticom/images/products/package/d/dgv0014a.png

SN74LVC14ADGVR

Active
Texas Instruments

6-CH, 2-V TO 3.6-V INVERTERS WITH SCHMITT-TRIGGER INPUTS

Technical Specifications

Parameters and characteristics commom to parts in this series

SpecificationSN74LVC14ADGVRSN74LVC14A Series
Current - Output High, Low [custom]24 mA24 mA
Current - Output High, Low [custom]24 mA24 mA
Current - Quiescent (Max) [Max]1 çA1 çA
FeaturesSchmitt TriggerSchmitt Trigger
Input Logic Level - High [Max]2 V2 V
Input Logic Level - High [Min]1.3 V1.3 V
Input Logic Level - Low [Max]0.8 V0.8 V
Input Logic Level - Low [Min]0.15 V0.15 V
Logic TypeInverterInverter
Max Propagation Delay @ V, Max CL6.2 ns6.2 ns
Mounting TypeSurface MountSurface Mount
Number of Circuits66
Number of Inputs11
Operating Temperature [Max]125 °C85 - 125 °C
Operating Temperature [Min]-40 °C-40 °C
Package / Case4.4 mm0.209 - 4.4 in
Package / Case14-TFSOP14-TSSOP, 14-SSOP, 14-SOIC, 14-TFSOP, 14-VFQFN Exposed Pad
Package / Case-0.173 in
Package / Case-4.4 mm
Package / Case-0.154 - 5.3 mm
Package / Case-3.9 mm
Package / Case-5.3 mm
Package / Case-0.209 in
Supplier Device Package-14-TSSOP, 14-SSOP, 14-VQFN (3.5x3.5), 14-SO
Voltage - Supply [Max]3.6 V3.6 V
Voltage - Supply [Min]1.65 V1.65 V

Pricing

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

SN74LVC14A Series

6-ch, 2-V to 3.6-V inverters with Schmitt-Trigger inputs

PartInput Logic Level - High [Min]Input Logic Level - High [Max]FeaturesNumber of CircuitsVoltage - Supply [Max]Voltage - Supply [Min]Number of InputsPackage / CasePackage / Case [custom]Package / Case [custom]Current - Output High, Low [custom]Current - Output High, Low [custom]Logic TypeOperating Temperature [Max]Operating Temperature [Min]Mounting TypeCurrent - Quiescent (Max) [Max]Max Propagation Delay @ V, Max CLInput Logic Level - Low [Max]Input Logic Level - Low [Min]Supplier Device PackagePackage / CasePackage / CasePackage / CasePackage / Case [y]Package / Case [y]
Texas Instruments
SN74LVC14APWRG4
The SN54LVC14A hex Schmitt-trigger inverter is designed for 2.7-V to 3.6-V VCCoperation, and the SN74LVC14A hex Schmitt-trigger inverter is designed for 1.65-V to 3.6-V VCCoperation. The devices contain six independent inverters and perform the Boolean function Y =A. Inputs can be driven from either 3.3-V or 5-V devices. This feature allows the use of these devices as translators in a mixed 3.3-V or 5-V system environment. The SN54LVC14A hex Schmitt-trigger inverter is designed for 2.7-V to 3.6-V VCCoperation, and the SN74LVC14A hex Schmitt-trigger inverter is designed for 1.65-V to 3.6-V VCCoperation. The devices contain six independent inverters and perform the Boolean function Y =A. Inputs can be driven from either 3.3-V or 5-V devices. This feature allows the use of these devices as translators in a mixed 3.3-V or 5-V system environment.
1.3 V
2 V
Schmitt Trigger
6
3.6 V
1.65 V
1
14-TSSOP
0.173 in
4.4 mm
24 mA
24 mA
Inverter
125 °C
-40 °C
Surface Mount
1 çA
6.2 ns
0.8 V
0.15 V
14-TSSOP
Texas Instruments
SN74LVC14APWT
The SN54LVC14A hex Schmitt-trigger inverter is designed for 2.7-V to 3.6-V VCCoperation, and the SN74LVC14A hex Schmitt-trigger inverter is designed for 1.65-V to 3.6-V VCCoperation. The devices contain six independent inverters and perform the Boolean function Y =A. Inputs can be driven from either 3.3-V or 5-V devices. This feature allows the use of these devices as translators in a mixed 3.3-V or 5-V system environment. The SN54LVC14A hex Schmitt-trigger inverter is designed for 2.7-V to 3.6-V VCCoperation, and the SN74LVC14A hex Schmitt-trigger inverter is designed for 1.65-V to 3.6-V VCCoperation. The devices contain six independent inverters and perform the Boolean function Y =A. Inputs can be driven from either 3.3-V or 5-V devices. This feature allows the use of these devices as translators in a mixed 3.3-V or 5-V system environment.
1.3 V
2 V
Schmitt Trigger
6
3.6 V
1.65 V
1
14-TSSOP
0.173 in
4.4 mm
24 mA
24 mA
Inverter
125 °C
-40 °C
Surface Mount
1 çA
6.2 ns
0.8 V
0.15 V
14-TSSOP
Texas Instruments
SN74LVC14ADBR
The SN54LVC14A hex Schmitt-trigger inverter is designed for 2.7-V to 3.6-V VCCoperation, and the SN74LVC14A hex Schmitt-trigger inverter is designed for 1.65-V to 3.6-V VCCoperation. The devices contain six independent inverters and perform the Boolean function Y =A. Inputs can be driven from either 3.3-V or 5-V devices. This feature allows the use of these devices as translators in a mixed 3.3-V or 5-V system environment. The SN54LVC14A hex Schmitt-trigger inverter is designed for 2.7-V to 3.6-V VCCoperation, and the SN74LVC14A hex Schmitt-trigger inverter is designed for 1.65-V to 3.6-V VCCoperation. The devices contain six independent inverters and perform the Boolean function Y =A. Inputs can be driven from either 3.3-V or 5-V devices. This feature allows the use of these devices as translators in a mixed 3.3-V or 5-V system environment.
1.3 V
2 V
Schmitt Trigger
6
3.6 V
1.65 V
1
14-SSOP
24 mA
24 mA
Inverter
125 °C
-40 °C
Surface Mount
1 çA
6.2 ns
0.8 V
0.15 V
14-SSOP
0.209 in
5.3 mm
Texas Instruments
SN74LVC14ADT
The SN54LVC14A hex Schmitt-trigger inverter is designed for 2.7-V to 3.6-V VCCoperation, and the SN74LVC14A hex Schmitt-trigger inverter is designed for 1.65-V to 3.6-V VCCoperation. The devices contain six independent inverters and perform the Boolean function Y =A. Inputs can be driven from either 3.3-V or 5-V devices. This feature allows the use of these devices as translators in a mixed 3.3-V or 5-V system environment. The SN54LVC14A hex Schmitt-trigger inverter is designed for 2.7-V to 3.6-V VCCoperation, and the SN74LVC14A hex Schmitt-trigger inverter is designed for 1.65-V to 3.6-V VCCoperation. The devices contain six independent inverters and perform the Boolean function Y =A. Inputs can be driven from either 3.3-V or 5-V devices. This feature allows the use of these devices as translators in a mixed 3.3-V or 5-V system environment.
1.3 V
2 V
Schmitt Trigger
6
3.6 V
1.65 V
1
14-SOIC
24 mA
24 mA
Inverter
125 °C
-40 °C
Surface Mount
1 çA
6.2 ns
0.8 V
0.15 V
0.154 in
3.9 mm
Texas Instruments
SN74LVC14ADR
The SN54LVC14A hex Schmitt-trigger inverter is designed for 2.7-V to 3.6-V VCCoperation, and the SN74LVC14A hex Schmitt-trigger inverter is designed for 1.65-V to 3.6-V VCCoperation. The devices contain six independent inverters and perform the Boolean function Y =A. Inputs can be driven from either 3.3-V or 5-V devices. This feature allows the use of these devices as translators in a mixed 3.3-V or 5-V system environment. The SN54LVC14A hex Schmitt-trigger inverter is designed for 2.7-V to 3.6-V VCCoperation, and the SN74LVC14A hex Schmitt-trigger inverter is designed for 1.65-V to 3.6-V VCCoperation. The devices contain six independent inverters and perform the Boolean function Y =A. Inputs can be driven from either 3.3-V or 5-V devices. This feature allows the use of these devices as translators in a mixed 3.3-V or 5-V system environment.
1.3 V
2 V
Schmitt Trigger
6
3.6 V
1.65 V
1
14-SOIC
24 mA
24 mA
Inverter
125 °C
-40 °C
Surface Mount
1 çA
6.2 ns
0.8 V
0.15 V
0.154 in
3.9 mm
Texas Instruments
SN74LVC14ADRG3
The SN54LVC14A hex Schmitt-trigger inverter is designed for 2.7-V to 3.6-V VCCoperation, and the SN74LVC14A hex Schmitt-trigger inverter is designed for 1.65-V to 3.6-V VCCoperation. The devices contain six independent inverters and perform the Boolean function Y =A. Inputs can be driven from either 3.3-V or 5-V devices. This feature allows the use of these devices as translators in a mixed 3.3-V or 5-V system environment. The SN54LVC14A hex Schmitt-trigger inverter is designed for 2.7-V to 3.6-V VCCoperation, and the SN74LVC14A hex Schmitt-trigger inverter is designed for 1.65-V to 3.6-V VCCoperation. The devices contain six independent inverters and perform the Boolean function Y =A. Inputs can be driven from either 3.3-V or 5-V devices. This feature allows the use of these devices as translators in a mixed 3.3-V or 5-V system environment.
1.3 V
2 V
Schmitt Trigger
6
3.6 V
1.65 V
1
14-SOIC
24 mA
24 mA
Inverter
125 °C
-40 °C
Surface Mount
1 çA
6.2 ns
0.8 V
0.15 V
0.154 in
3.9 mm
Texas Instruments
SN74LVC14ADGVR
The SN54LVC14A hex Schmitt-trigger inverter is designed for 2.7-V to 3.6-V VCCoperation, and the SN74LVC14A hex Schmitt-trigger inverter is designed for 1.65-V to 3.6-V VCCoperation. The devices contain six independent inverters and perform the Boolean function Y =A. Inputs can be driven from either 3.3-V or 5-V devices. This feature allows the use of these devices as translators in a mixed 3.3-V or 5-V system environment. The SN54LVC14A hex Schmitt-trigger inverter is designed for 2.7-V to 3.6-V VCCoperation, and the SN74LVC14A hex Schmitt-trigger inverter is designed for 1.65-V to 3.6-V VCCoperation. The devices contain six independent inverters and perform the Boolean function Y =A. Inputs can be driven from either 3.3-V or 5-V devices. This feature allows the use of these devices as translators in a mixed 3.3-V or 5-V system environment.
1.3 V
2 V
Schmitt Trigger
6
3.6 V
1.65 V
1
14-TFSOP
24 mA
24 mA
Inverter
125 °C
-40 °C
Surface Mount
1 çA
6.2 ns
0.8 V
0.15 V
4.4 mm
Texas Instruments
SN74LVC14ARGYR
The SN54LVC14A hex Schmitt-trigger inverter is designed for 2.7-V to 3.6-V VCCoperation, and the SN74LVC14A hex Schmitt-trigger inverter is designed for 1.65-V to 3.6-V VCCoperation. The devices contain six independent inverters and perform the Boolean function Y =A. Inputs can be driven from either 3.3-V or 5-V devices. This feature allows the use of these devices as translators in a mixed 3.3-V or 5-V system environment. The SN54LVC14A hex Schmitt-trigger inverter is designed for 2.7-V to 3.6-V VCCoperation, and the SN74LVC14A hex Schmitt-trigger inverter is designed for 1.65-V to 3.6-V VCCoperation. The devices contain six independent inverters and perform the Boolean function Y =A. Inputs can be driven from either 3.3-V or 5-V devices. This feature allows the use of these devices as translators in a mixed 3.3-V or 5-V system environment.
1.3 V
2 V
Schmitt Trigger
6
3.6 V
1.65 V
1
14-VFQFN Exposed Pad
24 mA
24 mA
Inverter
85 °C
-40 °C
Surface Mount
1 çA
6.2 ns
0.8 V
0.15 V
14-VQFN (3.5x3.5)
Texas Instruments
SN74LVC14ADRG4
The SN54LVC14A hex Schmitt-trigger inverter is designed for 2.7-V to 3.6-V VCCoperation, and the SN74LVC14A hex Schmitt-trigger inverter is designed for 1.65-V to 3.6-V VCCoperation. The devices contain six independent inverters and perform the Boolean function Y =A. Inputs can be driven from either 3.3-V or 5-V devices. This feature allows the use of these devices as translators in a mixed 3.3-V or 5-V system environment. The SN54LVC14A hex Schmitt-trigger inverter is designed for 2.7-V to 3.6-V VCCoperation, and the SN74LVC14A hex Schmitt-trigger inverter is designed for 1.65-V to 3.6-V VCCoperation. The devices contain six independent inverters and perform the Boolean function Y =A. Inputs can be driven from either 3.3-V or 5-V devices. This feature allows the use of these devices as translators in a mixed 3.3-V or 5-V system environment.
1.3 V
2 V
Schmitt Trigger
6
3.6 V
1.65 V
1
14-SOIC
24 mA
24 mA
Inverter
125 °C
-40 °C
Surface Mount
1 çA
6.2 ns
0.8 V
0.15 V
0.154 in
3.9 mm
Texas Instruments
SN74LVC14AD
The SN54LVC14A hex Schmitt-trigger inverter is designed for 2.7-V to 3.6-V VCCoperation, and the SN74LVC14A hex Schmitt-trigger inverter is designed for 1.65-V to 3.6-V VCCoperation. The devices contain six independent inverters and perform the Boolean function Y =A. Inputs can be driven from either 3.3-V or 5-V devices. This feature allows the use of these devices as translators in a mixed 3.3-V or 5-V system environment. The SN54LVC14A hex Schmitt-trigger inverter is designed for 2.7-V to 3.6-V VCCoperation, and the SN74LVC14A hex Schmitt-trigger inverter is designed for 1.65-V to 3.6-V VCCoperation. The devices contain six independent inverters and perform the Boolean function Y =A. Inputs can be driven from either 3.3-V or 5-V devices. This feature allows the use of these devices as translators in a mixed 3.3-V or 5-V system environment.
1.3 V
2 V
Schmitt Trigger
6
3.6 V
1.65 V
1
14-SOIC
24 mA
24 mA
Inverter
125 °C
-40 °C
Surface Mount
1 çA
6.2 ns
0.8 V
0.15 V
0.154 in
3.9 mm
Texas Instruments
SN74LVC14ANSR
The SN54LVC14A hex Schmitt-trigger inverter is designed for 2.7-V to 3.6-V VCCoperation, and the SN74LVC14A hex Schmitt-trigger inverter is designed for 1.65-V to 3.6-V VCCoperation. The devices contain six independent inverters and perform the Boolean function Y =A. Inputs can be driven from either 3.3-V or 5-V devices. This feature allows the use of these devices as translators in a mixed 3.3-V or 5-V system environment. The SN54LVC14A hex Schmitt-trigger inverter is designed for 2.7-V to 3.6-V VCCoperation, and the SN74LVC14A hex Schmitt-trigger inverter is designed for 1.65-V to 3.6-V VCCoperation. The devices contain six independent inverters and perform the Boolean function Y =A. Inputs can be driven from either 3.3-V or 5-V devices. This feature allows the use of these devices as translators in a mixed 3.3-V or 5-V system environment.
1.3 V
2 V
Schmitt Trigger
6
3.6 V
1.65 V
1
14-SOIC
24 mA
24 mA
Inverter
125 °C
-40 °C
Surface Mount
1 çA
6.2 ns
0.8 V
0.15 V
14-SO
5.3 mm
0.209 in
Texas Instruments
SN74LVC14APWR
The SN54LVC14A hex Schmitt-trigger inverter is designed for 2.7-V to 3.6-V VCCoperation, and the SN74LVC14A hex Schmitt-trigger inverter is designed for 1.65-V to 3.6-V VCCoperation. The devices contain six independent inverters and perform the Boolean function Y =A. Inputs can be driven from either 3.3-V or 5-V devices. This feature allows the use of these devices as translators in a mixed 3.3-V or 5-V system environment. The SN54LVC14A hex Schmitt-trigger inverter is designed for 2.7-V to 3.6-V VCCoperation, and the SN74LVC14A hex Schmitt-trigger inverter is designed for 1.65-V to 3.6-V VCCoperation. The devices contain six independent inverters and perform the Boolean function Y =A. Inputs can be driven from either 3.3-V or 5-V devices. This feature allows the use of these devices as translators in a mixed 3.3-V or 5-V system environment.
1.3 V
2 V
Schmitt Trigger
6
3.6 V
1.65 V
1
14-TSSOP
0.173 in
4.4 mm
24 mA
24 mA
Inverter
125 °C
-40 °C
Surface Mount
1 çA
6.2 ns
0.8 V
0.15 V
14-TSSOP
Texas Instruments
SN74LVC14APW
The SN54LVC14A hex Schmitt-trigger inverter is designed for 2.7-V to 3.6-V VCCoperation, and the SN74LVC14A hex Schmitt-trigger inverter is designed for 1.65-V to 3.6-V VCCoperation. The devices contain six independent inverters and perform the Boolean function Y =A. Inputs can be driven from either 3.3-V or 5-V devices. This feature allows the use of these devices as translators in a mixed 3.3-V or 5-V system environment. The SN54LVC14A hex Schmitt-trigger inverter is designed for 2.7-V to 3.6-V VCCoperation, and the SN74LVC14A hex Schmitt-trigger inverter is designed for 1.65-V to 3.6-V VCCoperation. The devices contain six independent inverters and perform the Boolean function Y =A. Inputs can be driven from either 3.3-V or 5-V devices. This feature allows the use of these devices as translators in a mixed 3.3-V or 5-V system environment.
1.3 V
2 V
Schmitt Trigger
6
3.6 V
1.65 V
1
14-TSSOP
0.173 in
4.4 mm
24 mA
24 mA
Inverter
125 °C
-40 °C
Surface Mount
1 çA
6.2 ns
0.8 V
0.15 V
14-TSSOP

Description

General part information

SN74LVC14A Series

The SN54LVC14A hex Schmitt-trigger inverter is designed for 2.7-V to 3.6-V VCCoperation, and the SN74LVC14A hex Schmitt-trigger inverter is designed for 1.65-V to 3.6-V VCCoperation.

The devices contain six independent inverters and perform the Boolean function Y =A.

Inputs can be driven from either 3.3-V or 5-V devices. This feature allows the use of these devices as translators in a mixed 3.3-V or 5-V system environment.

Documents

Technical documentation and resources

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

Application note

LVC and LV Low-Voltage CMOS Logic Data Book (Rev. B)

User guide

SNx4LVC14A Hex Schmitt-Trigger Inverters datasheet (Rev. AC)

Data sheet

Use of the CMOS Unbuffered Inverter in Oscillator Circuits

Application note

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

Application note

Semiconductor Packing Material Electrostatic Discharge (ESD) Protection

Application note

Implications of Slow or Floating CMOS Inputs (Rev. E)

Application note

Standard Linear & Logic for PCs, Servers & Motherboards

More literature

LOGIC Pocket Data Book (Rev. B)

User guide

Logic Guide (Rev. AB)

Selection guide

How to Select Little Logic (Rev. A)

Application note

Low-Voltage Logic (LVC) Designer's Guide

Design guide

Texas Instruments Little Logic Application Report

Application note

TI IBIS File Creation, Validation, and Distribution Processes

Application note

Signal Switch Data Book (Rev. A)

User guide

LVC Characterization Information

Application note

Optimizing Board Space for Discrete LOGIC Designs Using Smallest Package Solutio (Rev. A)

Application brief

STANDARD LINEAR AND LOGIC FOR DVD/VCD PLAYERS

More literature

CMOS Power Consumption and CPD Calculation (Rev. B)

Application note

Little Logic Guide 2018 (Rev. G)

Selection guide

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

Application note

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

Application note

Selecting the Right Level Translation Solution (Rev. A)

Application note

Live Insertion

Application note

Understanding Advanced Bus-Interface Products Design Guide

Application note

Design Summary for WCSP Little Logic (Rev. B)

Product overview

Input and Output Characteristics of Digital Integrated Circuits

Application note

Power-Up 3-State (PU3S) Circuits in TI Standard Logic Devices

Application note

Logic Guide

Datasheet