onsemi M74VHC1GT08DFT2G, 1 1-Input AND Logic Gate, 5-Pin SOT-353

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Subtotal (1 pack of 100 units)*

R 230,60

(exc. VAT)

R 265,20

(inc. VAT)

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Per Pack*
100 - 400R 2.306R 230.60
500 - 900R 2.249R 224.90
1000 - 1400R 2.181R 218.10
1500 - 1900R 2.094R 209.40
2000 +R 2.01R 201.00

*price indicative

Packaging Options:
RS stock no.:
184-4783
Mfr. Part No.:
M74VHC1GT08DFT2G
Manufacturer:
onsemi
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Brand

onsemi

Product Type

Logic Gate

Logic Function

AND

Mount Type

Surface

Number of Elements

1

Number of Inputs per Gate

1

Package Type

SOT-353

Pin Count

5

Logic Family

74VHC

Input Type

TTL, CMOS

Maximum Propagation Delay Time @ CL

11ns

Minimum Operating Temperature

-55°C

Maximum High Level Output Current

-8mA

Maximum Operating Temperature

125°C

Maximum Supply Voltage

5.5V

Width

1.35 mm

Minimum Supply Voltage

2V

Length

2.2mm

Height

1mm

Standards/Approvals

No

Maximum Low Level Output Current

8mA

Automotive Standard

AEC-Q100

COO (Country of Origin):
CN
The MC74VHC1GT08 is an advanced high speed CMOS 2-input AND gate fabricated with silicon gate CMOS technology. It achieves high speed operation similar to equivalent Bipolar Schottky TTL while maintaining CMOS low power dissipation. The internal circuit is composed of three stages, including a buffer output which provides high noise immunity and stable output. The device input is compatible with TTL-type input thresholds and the output has a full 5 V CMOS level output swing. The input protection circuitry on this device allows overvoltage tolerance on the input, allowing the device to be used as a logic-level translator from 3.0 V CMOS logic to 5.0 V CMOS Logic or from 1.8 V CMOS logic to 3.0 V CMOS Logic while operating at the high-voltage power supply. The MC74VHC1GT08 input structure provides protection when voltages up to 7 V are applied, regardless of the supply voltage. This allows the MC74VHC1GT08 to be used to interface 5 V circuits to 3 V circuits. The output structures also provide protection when VCC = 0 V. These input and output structures help prevent device destruction caused by supply voltage - input/output voltage mismatch, battery backup, hot insertion, etc.

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