74LVC1G3208MDBVTEP >
74LVC1G3208MDBVTEP
Texas Instruments
HIREL DEVICE FOR SN74LVC1G3208DB
2719 Pcs New Original In Stock
AND/OR Gate Configurable 1 Circuit 3 Input (2, 1) Input SOT-23-6
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74LVC1G3208MDBVTEP Texas Instruments
5.0 / 5.0 - (469 Ratings)

74LVC1G3208MDBVTEP

Product Overview

1248409

DiGi Electronics Part Number

74LVC1G3208MDBVTEP-DG

Manufacturer

Texas Instruments
74LVC1G3208MDBVTEP

Description

HIREL DEVICE FOR SN74LVC1G3208DB

Inventory

2719 Pcs New Original In Stock
AND/OR Gate Configurable 1 Circuit 3 Input (2, 1) Input SOT-23-6
CAD Models - PCB Symbols & Footprints
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Minimum 1

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In Stock (All prices are in USD)
  • QTY Target Price Total Price
  • 250 1.8449 461.2153
  • 500 1.6736 836.7952
  • 1250 1.4421 1802.6756
  • 2500 1.3555 3388.6410
  • 6250 1.3045 8153.1333
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74LVC1G3208MDBVTEP Technical Specifications

Category Logic, Gates and Inverters - Multi-Function, Configurable

Manufacturer Texas Instruments

Packaging Tape & Reel (TR)

Series 74LVC

Product Status Active

Logic Type AND/OR Gate

Number of Circuits 1

Number of Inputs 3 Input (2, 1)

Schmitt Trigger Input No

Output Type Single-Ended

Current - Output High, Low 32mA, 32mA

Voltage - Supply 1.65V ~ 5.5V

Operating Temperature -55°C ~ 125°C

Mounting Type Surface Mount

Package / Case SOT-23-6

Supplier Device Package SOT-23-6

Base Product Number 74LVC1G3208

Datasheet & Documents

Environmental & Export Classification

RoHS Status ROHS3 Compliant
Moisture Sensitivity Level (MSL) 1 (Unlimited)
REACH Status REACH Unaffected
ECCN EAR99
HTSUS 8542.39.0001

Additional Information

Other Names
296-41067-6-DG
-296-41067-1-DG
296-41067-2-DG
296-41067-1-DG
296-74LVC1G3208MDBVTEPCT
-V62/13605-01XE
296-74LVC1G3208MDBVTEPDKR
-V62/13605-01XE-NDR
TEXTIS74LVC1G3208MDBVTEP
296-41067-1
296-41067-2
2156-74LVC1G3208MDBVTEP
74LVC1G3208MDBVTEP-DG
296-74LVC1G3208MDBVTEPTR
296-41067-6
Standard Package
250

Reviews

5.0/5.0-(Show up to 5 Ratings)
맑은***야기
Dec 02, 2025
5.0
배송이 매우 빠르고 정확해서 급한 작업에도 문제없고, 제품 품질도 최상이었어요.
Sonn***lanz
Dec 02, 2025
5.0
Schneller Versand bedeutet für mich einen großen Vorteil, und bei DiGi Electronics war es genau so.
Cris***nrise
Dec 02, 2025
5.0
I received outstanding support post-purchase, which made me trust their brand even more.
Starr***edSoul
Dec 02, 2025
5.0
DiGi Electronics makes quality accessible with their great prices and easy-to-use website.
Gold***ibes
Dec 02, 2025
5.0
DiGi Electronics always exceeds our expectations with their after-sales care.
Lun***low
Dec 02, 2025
5.0
Support team handled my warranty queries efficiently, reducing my worries.
Mys***Aura
Dec 02, 2025
5.0
I appreciate their dedication to reducing environmental impact through innovative packaging.
Mist***rning
Dec 02, 2025
5.0
Their after-sales support team is knowledgeable and always willing to assist after the sale.
Gold***leam
Dec 02, 2025
5.0
They consistently deliver products swiftly, exceeding my expectations.
Radi***ePath
Dec 02, 2025
5.0
I will definitely shop here again thanks to their efficient website and speedy delivery.
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Frequently Asked Questions (FAQ)

Can the 74LVC1G3208MDBVTEP be used to replace a 74LVC1G32 or 74LVC1G38 in a mixed-logic gate design, and what are the key configuration risks when re-pinning for OR vs AND function?

Yes, the 74LVC1G3208MDBVTEP can replace a 74LVC1G32 (OR) or 74LVC1G38 (NAND) by configuring its internal logic via pin strapping, but a key risk lies in incorrect pin assignment—specifically, misconnecting the mode control pin (SEL). If the SEL pin is left floating or improperly biased, the 74LVC1G3208MDBVTEP may enter an undefined logic state. Always hard-wire SEL to GND for OR function or VCC for AND, using 10kΩ pull-down or pull-up resistors if driven from a low-power source to ensure reliable operation across supply voltages from 1.65V to 5.5V.

What are the implications of using the 74LVC1G3208MDBVTEP in a high-noise industrial environment with fast-switching signals, given it lacks Schmitt-trigger inputs?

Since the 74LVC1G3208MDBVTEP does not feature Schmitt-trigger inputs, it is more susceptible to ringing and noise-induced false triggering in electrically noisy environments. To mitigate risk, use tight bypassing (0.1µF ceramic capacitor close to VCC-GND pins), minimize PCB trace lengths to inputs, and consider adding small RC filters (e.g., 22Ω series resistor with 33pF capacitor to GND) on long or exposed traces. For systems with large ground shifts, ensure stable power domains as the device’s 32mA drive strength can induce ground bounce if not properly decoupled.

How does the 74LVC1G3208MDBVTEP handle level translation between 3.3V and 5V systems, and what are the reliability concerns when interfacing with older 5V TTL sensors?

The 74LVC1G3208MDBVTEP supports level translation from 1.65V to 5.5V, making it suitable for interfacing 3.3V MCUs with 5V TTL sensors. However, when driving 5V inputs, ensure the sensor is 3.3V-tolerant or uses TTL-compatible thresholds. While the 74LVC1G3208MDBVTEP outputs up to VCC, a 3.3V supply will produce ~3.3V logic high, which may be marginal for older 5V systems requiring VIH > 3.5V. In such cases, use a dedicated level translator or verify margins across temperature and load conditions to avoid intermittent failures.

Is the SOT-23-6 package of the 74LVC1G3208MDBVTEP suitable for high-reliability automotive applications, and what PCB layout practices are critical for thermal and signal integrity?

Yes, the 74LVC1G3208MDBVTEP is rated for -55°C to 125°C and is RoHS3-compliant, making it suitable for automotive environments. In the SOT-23-6 package, thermal dissipation is limited—ensure at least two solder vias under the thermal pad (if applicable) or robust copper pours on power/ground traces. Avoid sharp bends in routing and maintain separation between high-speed inputs to prevent crosstalk. Given the small footprint, use controlled impedance practices for signal integrity if switching exceeds 50 MHz, and confirm assembly processes handle MSL-1 moisture sensitivity to prevent popcorning during reflow.

What are the risks of using the 74LVC1G3208MDBVTEP in a battery-powered IoT sensor node operating at 1.8V, and how can leakage current affect system longevity?

Operating the 74LVC1G3208MDBVTEP at 1.8V is within its 1.65V–5.5V range, but leakage current becomes critical in battery-powered systems. While the datasheet specifies low static current, improper input conditioning (e.g., floating inputs) can cause CMOS latch-up or excess quiescent draw through parasitic paths. Always tie unused inputs to GND or VCC via 100kΩ resistors. Additionally, verify that source impedances are low (< 1kΩ) to avoid slow transitions increasing dynamic power. Use microcontroller-controlled power gating if the 74LVC1G3208MDBVTEP is inactive for extended periods to maximize battery life.

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