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XBLW SN74HC74N(XBLW) product image
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XBLW SN74HC74N(XBLW)RoHS

Manufacturer
XBLWAsian Brands
MPN
SN74HC74N(XBLW)
LCSC Part #
C18723532
Packaging
DIP-14
Customer #
Key Attributes
Dual D-type flip-flop with set and reset; positive-edge trigger
Datasheetpdf iconXBLW SN74HC74N(XBLW)
In-Stock: 2,965
2,965 In stock, ships now
Add to BOM List
QtyUnit PriceTotal Amount
5+$ 0.1671$ 0.1504$ 0.75
50+$ 0.131$ 0.1179$ 5.90
150+$ 0.1155$ 0.1040$ 15.60
500+$ 0.0962$ 0.0866$ 43.30
2,000+$ 0.0876$ 0.0789$ 157.80
5,000+$ 0.0825$ 0.0743$ 371.50
Standard Packaging25/Full Tube
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Products Specifications

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TypeDescription
CategoryIntegrated Circuits (ICs)/Logic/Flip Flops
ManufacturerXBLW
PackagingDIP-14
Voltage - Supply2V~6V
Number of Bits per Element1
Output TypeComplementary type
Operating Temperature-40℃~+105℃
Series74HC Series
Synchronous/AsynchronousAsynchronous
Number of Elements2
Current - Output High(IOH)4mA
Current - Output Low(IOL)5.2mA
Setup Time13ns
Quiescent Current2uA
Hold Time-2ns
Propagation Delay14ns@5V,15pF
Trigger TypeRising Edge

Additional Information

TypeDetails
Minimum5
Multiple5
Standard Packaging25
Sales UnitPiece

Introduction

AI Translation

The SN74HC74 is a dual positive edge triggered D-type flip-flop. They have individual data (nD), clock (nCP), set (nSD) and reset (nRD) inputs, and complementary nQ and nQ̅ Outputs. Data at the nDinput, that meets the set-up and hold time requirements on the LOW-to-HIGH clock transition, is stored in the flip-flop and appears at the nQ output. Schmitt-trigger action in the clock input, makes the circuit highly tolerant to slower clock rise and fall times. Inputs include clamp diodes. This enables the use of current limiting resistors to interface inputs to voltages in excess of VCC

Features

AI Translation
  • Buffered inputs
  • Wide operating voltage range: 2 to 6 V
  • Symmetrical output impedance
  • Low power dissipation
  • Balanced propagation delays
  • Specified from -40°C to +125°C

Applications

AI Translation
  • Convert a momentary switch to a toggle switch
  • Divide a clock signal by 2 or 4