Logic - Flip Flops

Image Part Number Description / PDF Quantity Rfq
74ACT11175DW

74ACT11175DW

Rochester Electronics

D FLIP-FLOP

2498

CY74FCT377ATQC

CY74FCT377ATQC

Rochester Electronics

FCT SERIES, 1 FUNC, POSITIVE EDG

1734

SN74S113N

SN74S113N

Rochester Electronics

J-K FLIP-FLOP, S SERIES, 2-FUNC,

4586

CY74FCT16374ETPVCT

CY74FCT16374ETPVCT

Rochester Electronics

BUS DRIVER, FCT SERIES, 2 FUNC,

22000

54F175/BEA

54F175/BEA

Rochester Electronics

DUAL MARKED (M38510/34104BEA)

1431

SN54LS107J

SN54LS107J

Rochester Electronics

J-K FLIP-FLOP

234

54F399/BEA

54F399/BEA

Rochester Electronics

DUAL MARKED (M38510/35002BEA)

724

CY74FCT821ATQCT-CY

CY74FCT821ATQCT-CY

Rochester Electronics

BUS DRIVER, FCT SERIES, 1 FUNC,

2000

100353QI

100353QI

Rochester Electronics

100K SERIES, 1-FUNC, 8-BIT

2831

54H71DM

54H71DM

Rochester Electronics

J-K FLIP-FLOP, 1 FUNC, MASTER-SL

362

74F175DC

74F175DC

Rochester Electronics

F/FAST SERIES, 1 FUNC, POSITIVE

483

54F74/BCA

54F74/BCA

Rochester Electronics

DUAL MARKED (M38510/34101BCA)

777

MC10131P

MC10131P

Rochester Electronics

10K SERIES, 2 FUNC, POSITIVE EDG

0

54F174/BEA

54F174/BEA

Rochester Electronics

DUAL MARKED (M38510/34107BEA)

334

DM7470N

DM7470N

Rochester Electronics

J-K FLIP-FLOP, TTL/H/L SERIES, 1

3450

CY2SSTV16859LFCT

CY2SSTV16859LFCT

Rochester Electronics

SSTV SERIES, 1 FUNC, POSITIVE ED

2000

74H106PC

74H106PC

Rochester Electronics

J-K FLIP-FLOP, 2 FUNC, NEGATIVE

61

CY2SSTV16859LFC

CY2SSTV16859LFC

Rochester Electronics

SSTV SERIES, 1 FUNC, POSITIVE ED

1112

CY74FCT16374ETPVC

CY74FCT16374ETPVC

Rochester Electronics

BUS DRIVER, FCT SERIES, 2 FUNC,

2902

54LS113A/BCA

54LS113A/BCA

Rochester Electronics

DUAL MARKED (M38510/30104BCA)

865

Logic - Flip Flops

1. Overview

Flip flops are fundamental building blocks in digital electronics, serving as bistable multivibrators capable of storing one bit of data. They form the basis of sequential logic circuits, enabling data storage, synchronization, and state control. Their ability to maintain stable states until triggered by clock signals makes them critical in memory units, counters, and register files. Modern computing, telecommunications, and automation systems rely heavily on flip flops for reliable data management and timing control.

2. Major Types and Functional Classification

TypeFunctional CharacteristicsApplication Examples
SR Flip FlopSet-Reset operation with undefined state when both inputs activateBasic memory elements, control circuits
D Flip FlopData storage with single data input synchronized by clock edgeRegisters, shift registers, data buffers
JK Flip FlopUniversal type eliminating invalid states through feedbackCounters, frequency dividers, state machines
T Flip FlopToggle state with each clock pulse when input activeBinary counters, clock division circuits

3. Structure and Composition

Flip flops are typically constructed using transistor-transistor logic (TTL) or complementary metal-oxide-semiconductor (CMOS) technologies. A standard CMOS D flip flop contains 8-12 transistors arranged in master-slave configuration with transmission gates. Key components include:

  • Clock signal input for synchronization
  • Data input/output terminals
  • Feedback paths for state retention
  • Level-sensitive or edge-triggered control circuitry

4. Key Technical Specifications

ParameterTypical RangeImportance
Clock FrequencyDC to 10GHz (varies by technology)Determines maximum operating speed
Propagation Delay1-10ns (CMOS), 3-20ns (TTL)Impacts circuit timing margins
Power Consumption1mW-100mW per flip flopCritical for battery-powered devices
Setup/Hold Time0.1-2nsEssential for reliable data capture
Output Drive Strength2mA-24mAAffects fan-out capability

5. Application Domains

  • Telecommunications: Synchronization circuits in 5G base stations, optical transceivers
  • Computing: CPU register files, cache memory controllers
  • Industrial Control: Programmable logic controllers (PLCs), sensor interfaces
  • Consumer Electronics: Timing circuits in smartphones, wearable devices
  • Automotive: CAN bus controllers, ADAS synchronization modules

6. Leading Manufacturers and Products

ManufacturerRepresentative ProductsKey Features
Texas InstrumentsSN74LVC1G80Single D flip flop with 14ns delay, 2GHz clock rate
STMicroelectronicsSTM74HC74ADGDual D flip flop with 8mA drive, 125MHz operation
NXP Semiconductors74AUP1G175GFLow-power quad D flip flop, 0.9V-3.6V operation
IntelIOP333B00ESHigh-speed differential flip flops for FPGA interfaces

7. Selection Guidelines

Key selection criteria include:

  • Speed requirements vs. power budget trade-offs
  • Compatibility with existing logic families (TTL/CMOS)
  • Package type (QFP, BGA, WLCSP) for PCB constraints
  • Environmental specifications (temperature range, radiation hardness)
  • Integration level (discrete vs. embedded in FPGAs/ASICs)

Example: For high-speed networking equipment, select flip flops with <1ns jitter and LVDS compatibility.

8. Industry Trends

Current development trends include:

  • Migration to FinFET and GAAFET transistor structures for sub-5nm nodes
  • Integration with on-die clocking networks in 3D-stacked ICs
  • Emergence of spin-transfer torque flip flops for non-volatile memory
  • Adoption of photonics-ready flip flops for optical computing interfaces
  • Development of ultra-low-voltage ( 0.5V) flip flops for IoT applications
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