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SOIC (DW)
Integrated Circuits (ICs)

CD74HCT244M

Obsolete
Texas Instruments

6-CH, 4.5-V TO 5.5-V BUFFERS WITH TTL-COMPATIBLE CMOS INPUTS AND 3-STATE OUTPUTS

SOIC (DW)
Integrated Circuits (ICs)

CD74HCT244M

Obsolete
Texas Instruments

6-CH, 4.5-V TO 5.5-V BUFFERS WITH TTL-COMPATIBLE CMOS INPUTS AND 3-STATE OUTPUTS

Technical Specifications

Parameters and characteristics for this part

SpecificationCD74HCT244M
Current - Output High, Low [custom]6 mA
Current - Output High, Low [custom]6 mA
Logic TypeBuffer, Non-Inverting
Mounting TypeSurface Mount
Number of Bits per Element4
Number of Elements2
Operating Temperature [Max]125 °C
Operating Temperature [Min]-55 °C
Output Type3-State
Package / Case20-SOIC
Package / Case [y]0.295 in
Package / Case [y]7.5 mm
Supplier Device Package20-SOIC
Voltage - Supply [Max]5.5 V
Voltage - Supply [Min]4.5 V

Pricing

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

DistributorPackageQuantity$
DigikeyTube 1$ 2.13
10$ 1.36
25$ 1.16
100$ 0.93
250$ 0.82
500$ 0.75
1000$ 0.70
Texas InstrumentsTUBE 1$ 1.07
100$ 0.82
250$ 0.61
1000$ 0.43

Description

General part information

SN74HCT244-Q1 Series

These octal buffers and line drivers are designed specifically to improve both the performance and density of 3-state memory address drivers, clock drivers, and bus-oriented receivers and transmitters. The SNx4HCT244 devices are organized as two 4-bit buffers or drivers with separate output-enable (OE) inputs. When OE is low, the device passes non inverted data from the A inputs to the Y outputs. When OE is high, the outputs are in the high-impedance state.

These octal buffers and line drivers are designed specifically to improve both the performance and density of 3-state memory address drivers, clock drivers, and bus-oriented receivers and transmitters. The SNx4HCT244 devices are organized as two 4-bit buffers or drivers with separate output-enable (OE) inputs. When OE is low, the device passes non inverted data from the A inputs to the Y outputs. When OE is high, the outputs are in the high-impedance state.