Logic - Latches

Image Part Number Description / PDF Quantity Rfq
54LS256DM

54LS256DM

Rochester Electronics

D LATCH, 2 FUNC, 4 BIT, TTL, CDI

645

CY74FCT162373ETPVC

CY74FCT162373ETPVC

Rochester Electronics

BUS DRIVER, FCT SERIES, 2 FUNC,

7862

54ACT373DM/B

54ACT373DM/B

Rochester Electronics

OCTAL TRANSPARENT LATCH WITH 3 S

639

SCAN18373TSSC-G

SCAN18373TSSC-G

Rochester Electronics

TRANSPARENT LATCH WITH 3 STATE O

143

DM54LS168J/B

DM54LS168J/B

Rochester Electronics

DM54LS168J/B

872

9022FM

9022FM

Rochester Electronics

FF/LATCH

485

DM54LS122J/B

DM54LS122J/B

Rochester Electronics

DM54LS122J/B

900

93L22FM/B

93L22FM/B

Rochester Electronics

QUAD LATCH

1316

74AS842DWR

74AS842DWR

Rochester Electronics

10 BIT INTERFACE D-TYPE LATCHES

1694

74ALS993NT

74ALS993NT

Rochester Electronics

9 BIT D-TYPE TRANSPRT READ-BACK

929

54LS259B/BEA

54LS259B/BEA

Rochester Electronics

DUAL MARKED (M38510/31605BEA)

2160

54LS279DM/B

54LS279DM/B

Rochester Electronics

QUAD 1 BIT LATCH

1970

93L14DM/B

93L14DM/B

Rochester Electronics

QUAD LATCH

844

5475/BEA

5475/BEA

Rochester Electronics

DUAL MARKED (M38510/01501BEA)

1474

DM54279W/B

DM54279W/B

Rochester Electronics

LATCH

7

Logic - Latches

1. Overview

Logic latches are fundamental components in digital electronics, serving as bistable multivibrators that store one bit of binary data. They operate in two stable states (0 or 1) and are controlled by input signals to maintain or change their output states. Latches are essential building blocks for memory units, registers, and sequential logic circuits. Their importance spans across modern computing, telecommunications, industrial automation, and consumer electronics, enabling temporary data storage and synchronization in digital systems.

2. Major Types and Functional Classification

TypeFunctional CharacteristicsApplication Examples
SR LatchSet-Reset functionality; asynchronous operationBasic memory units, control circuits
D LatchData storage with single data input (D) and clock controlShift registers, data buffers
JK LatchUniversal latch with toggling capability; eliminates invalid statesCounters, state machines
T LatchToggle mode operation; simplified JK variantFrequency division circuits

3. Structure and Composition

Logic latches typically consist of transistor-based gate structures, often implemented using CMOS or TTL technology. A standard latch includes:

  • Input terminals (e.g., Data, Set, Reset, Clock)
  • Cross-coupled inverters for state retention
  • Control logic gates (NAND/AND-OR) for signal processing
  • Output terminals (Q and Q for complementary outputs)

Modern IC latches are fabricated on silicon wafers with sub-micron process nodes (e.g., 180nm, 130nm), featuring multiple latches per package (e.g., 8-bit registers) in standard footprints like SOIC, TSSOP, and QFN.

4. Key Technical Specifications

ParameterDescriptionImportance
Supply Voltage (VCC)Operating voltage range (e.g., 1.65-5.5V)Determines compatibility with system power rails
Propagation DelayTime between input change and output response (ns)Impacts maximum operating frequency
Power ConsumptionStatic and dynamic current draw ( A/mA)Crucial for battery-powered devices
Operating TemperatureTemperature range (-40 C to +125 C)Defines environmental durability
Output Drive StrengthCurrent delivery capability (mA)Affects fan-out and signal integrity

5. Application Fields

Major industries utilizing latches include:

  • Telecommunications: Network switches, routers, optical transceivers
  • Computing: CPU registers, cache memory, ALU components
  • Industrial Automation: PLCs, sensor data buffers, motor controllers
  • Consumer Electronics: Smartphones, wearables, display drivers
  • Automotive: CAN bus controllers, ADAS data registers

6. Leading Manufacturers and Products

ManufacturerKey ProductsFeatures
Texas InstrumentsSN74LVC1G374Low-voltage D latch with 1.5ns delay
STMicroelectronicsCD4042BCMOS latch with clock polarity control
NXP Semiconductors74HC373Octal D latch for bus interfacing
ON SemiconductorMC74VHC1G373Ultra-low power single latch

7. Selection Guidelines

Key selection criteria:

  • Functional requirements (e.g., SR vs. D latch functionality)
  • Speed vs. power consumption trade-offs
  • Package type for PCB space constraints
  • Environmental operating conditions
  • Cost optimization for mass production
  • Supply voltage compatibility with existing system components

Case Study: For a portable IoT device, prioritize ultra-low power latches like ON Semi's MC74VHC1G373 with <1 A quiescent current, while high-speed applications (e.g., networking ASICs) require devices with sub-ns propagation delays.

8. Industry Trends

Emerging trends shaping latch technology include:

  • Continued process node scaling (e.g., 28nm FD-SOI for radiation-hardened latches)
  • Integrated error correction features for mission-critical applications
  • Development of latch arrays with programmable interconnects
  • Advanced packaging (3D ICs, chiplets) for higher density
  • Low-voltage operation (<0.8V) for energy-efficient computing
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