Zenode.ai Logo
Beta
SN74ABT244ADBR
Integrated Circuits (ICs)

SN74ABT244ADBR

Active
Texas Instruments

4 64MA 4.5V~5.5V 32MA 2 SSOP-20-208MIL BUFFERS, DRIVERS, RECEIVERS, TRANSCEIVERS ROHS

Deep-Dive with AI

Search across all available documentation for this part.

SN74ABT244ADBR
Integrated Circuits (ICs)

SN74ABT244ADBR

Active
Texas Instruments

4 64MA 4.5V~5.5V 32MA 2 SSOP-20-208MIL BUFFERS, DRIVERS, RECEIVERS, TRANSCEIVERS ROHS

Technical Specifications

Parameters and characteristics for this part

SpecificationSN74ABT244ADBR
Current - Output High, Low [custom]64 mA
Current - Output High, Low [custom]32 mA
Logic TypeBuffer, Non-Inverting
Mounting TypeSurface Mount
Number of Bits per Element4
Number of Elements2
Operating Temperature [Max]85 °C
Operating Temperature [Min]-40 °C
Output Type3-State
Package / Case20-SSOP
Supplier Device Package20-SSOP
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$
DigikeyCut Tape (CT) 1$ 1.10
10$ 0.98
25$ 0.93
100$ 0.77
250$ 0.72
500$ 0.63
1000$ 0.50
Digi-Reel® 1$ 1.10
10$ 0.98
25$ 0.93
100$ 0.77
250$ 0.72
500$ 0.63
1000$ 0.50
Tape & Reel (TR) 2000$ 0.47
6000$ 0.44
10000$ 0.43
LCSCPiece 1$ 2.40
200$ 1.04
500$ 1.01
1000$ 1.00
Texas InstrumentsLARGE T&R 1$ 0.81
100$ 0.63
250$ 0.46
1000$ 0.33

Description

General part information

SN74ABT244A 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. Together with the SN54ABT240, SN74ABT240A, SN54ABT241, and SN74ABT241A, these devices provide the choice of selected combinations of inverting and noninverting outputs, symmetrical active-low output-enable (OE)\ inputs, and complementary OE and OE\ inputs.

The SN54ABT244 and SN74ABT244A are organized as two 4-bit buffers/line drivers with separate OE\ inputs. When OE\ is low, the devices pass noninverted data from the A inputs to the Y outputs. When OE\ is high, the outputs are in the high-impedance state.

To ensure the high-impedance state during power up or power down, OE\ should be tied to VCCthrough a pullup resistor; the minimum value of the resistor is determined by the current-sinking capability of the driver.