Nexperia USA Inc. 74LVC1GU04GM,115
- Part No.:
- 74LVC1GU04GM,115
- Manufacturer:
- Nexperia USA Inc.
- Category:
- Gates and Inverters
- Package:
- 6-XFDFN
- Datasheet:
-
74LVC1GU04GM,115.pdf
- Description:
- IC INVERTER 1CH 1-INP 6XSON
- Quantity:
- Payment:

- Shipping:

Inventory:4,890
Please send an inquiry. Send us your inquiry, and we will respond immediately.
Product details
Overview
74LVC1GU04GM,115 from Nexperia is a single unbuffered CMOS inverter in XSON6 (SOT886) package with 6 terminals, operating from 1.65 V to 5.5 V supply, delivering ±24 mA output drive at 3.0 V, and rated for -40 °C to +125 °C. It enables level-shifting between 3.3 V and 5 V logic domains in compact space-constrained applications such as portable sensor interfaces and low-power MCU peripheral buffering.
For engineers reviewing the 74LVC1GU04GM,115 datasheet, 74LVC1GU04GM,115 pinout, 74LVC1GU04GM,115 application, or 74LVC1GU04GM,115 equivalent, this page delivers verified electrical specs, validated terminal mapping for SOT886, real-world use cases in oscillator design and linear amplification, and two confirmed functional alternatives with documented parametric differences.
Technical Context
The device implements a single-stage unbuffered inverter topology with no internal gain staging-enabling direct use as a crystal oscillator amplifier or analog linear stage when biased externally. Its overvoltage-tolerant inputs accept up to 5.5 V regardless of VCC, supporting mixed-voltage system interfacing without external level shifters.
Propagation delay ranges from 0.5 ns (VCC = 4.5–5.5 V) to 6.5 ns (VCC = 1.65–1.95 V, Tamb = –40 to +125 °C), with typical power dissipation capacitance of 14.9 pF at 3.3 V. Input hysteresis is not specified; switching thresholds scale with VCC (VIH ≥ 0.8×VCC, VIL ≤ 0.2×VCC) across the full temperature range.
Key Specifications
| Parameter | Value and Actual Design Meaning |
|---|---|
| Supply Voltage | 1.65 V to 5.5 V - supports direct integration into both 1.8 V/2.5 V/3.3 V and 5 V logic subsystems |
| Output Drive | ±24 mA at VCC = 3.0 V - sufficient to drive 50 Ω transmission lines or multiple 74LVC inputs |
| Propagation Delay | 0.5–4.0 ns (VCC = 4.5–5.5 V, Tamb = –40 to +125 °C) - enables timing-critical signal inversion in high-speed digital control paths |
| Input Voltage Range | –0.5 V to 6.5 V - allows safe interfacing with 5 V signals even when powered from 1.65 V |
| Operating Temperature | –40 °C to +125 °C - qualified for under-hood automotive modules and industrial motor controllers |
| Power Dissipation Cap | 250 mW (Tamb ≤ 74 °C, SOT886) - defines maximum continuous power before thermal derating begins |
| ESD Rating | HBM > 2000 V, CDM > 1000 V - meets IEC 61000-4-2 Level 2 for board-level robustness |
Pinout & Package
XSON6 (SOT886) plastic extremely thin small outline package; no leads; 6 terminals; body dimensions 1.0 mm × 1.45 mm × 0.5 mm; thermal pad absent; pin 1 index located on lower-left corner below marking code.
| Pin/Terminal | Circuit Role | Design Meaning |
|---|---|---|
| 1 | Not connected | No internal connection; must be left floating or tied to GND per layout best practice |
| 2 | Input (A) | Inverting logic input; accepts 0–5.5 V; no internal pull-up/down |
| 3 | GND | Digital ground reference; primary return path for output current and supply leakage |
| 4 | Output (Y) | Inverted logic output; rail-to-rail swing between GND and VCC under load |
| 5 | Not connected | No internal connection; must be left floating or tied to GND |
| 6 | VCC | Positive supply input; decoupling capacitor (100 nF) required within 2 mm of this terminal |
Key Features
| Feature | Design Value |
|---|---|
| Overvoltage-tolerant inputs | Withstands 5.5 V input regardless of VCC down to 1.65 V - eliminates need for external clamping diodes in mixed-supply systems |
| Wide VCC range | 1.65–5.5 V operation - enables single BOM item across 1.8 V microcontrollers, 3.3 V sensors, and legacy 5 V peripherals |
| High noise immunity | Guaranteed VIH/VIL margins (≥20% VCC) across full temperature range - reduces false triggering in electrically noisy environments |
| Low ICC standby current | Max 4 μA at VCC = 5.5 V - suitable for battery-powered wake-on-event circuits with multi-year shelf life |
| Latch-up immunity | Exceeds 250 mA per JEDEC 78 - prevents destructive latch-up during transient overvoltage events |
Applications
| Crystal Oscillator Core | Linear Amplifier Stage |
|---|---|
Use Scenario: Used as gain element in Pierce crystal oscillator circuits driving 32.768 kHz watch crystals or 1–20 MHz fundamental-mode crystals. IC Role / Device Role / Timing Role: Unbuffered inverter configured with external feedback resistor (R1 = 1–10 MΩ) and load capacitors to sustain oscillation with loop gain >1. Use Value: Enables discrete, low-cost clock generation without dedicated oscillator ICs; typical ICC = 2 mA at 10 MHz. | Use Scenario: Biased in linear region using resistive feedback network to amplify analog sensor signals (e.g., thermistor bridges, piezoelectric transducers). IC Role / Device Role / Timing Role: Inverter operated with DC bias point set near VCC/2 via R1/R2 divider to function as Class-A amplifier with unity-gain bandwidth ~5 MHz. Use Value: Provides rail-to-rail output swing (VCC − 1.5 V p-p centered at 0.5×VCC) with minimal component count in space-limited analog front ends. |
| Level-Shifting Interface | MCU Peripheral Buffer |
Use Scenario: Interfacing 5 V legacy UART or GPIO peripherals to 3.3 V or 1.8 V microcontrollers in industrial gateways. IC Role / Device Role / Timing Role: Single inverter used in non-inverting configuration (two stages) or directly as inverting level translator with overvoltage-tolerant input. Use Value: Eliminates need for dedicated bidirectional level translators; supports 0–5.5 V input while powered from 1.65–5.5 V supply. | Use Scenario: Driving high-capacitance traces (e.g., LED matrix rows, LCD segment lines) from low-drive MCU GPIO pins. IC Role / Device Role / Timing Role: Output buffer providing ±24 mA sink/source capability to overcome trace capacitance and ensure fast edge rates. Use Value: Reduces GPIO loading and improves signal integrity on long PCB runs; propagation delay <4 ns ensures timing predictability. |
Equivalent & Alternatives
The following parts are listed as comparable options for similar unbuffered inverter applications.
| Alternative Part | Technical Difference | Application Difference | Selection Advice |
|---|---|---|---|
| SN74LVC1G04DBVR | Same logic function, SOT-23-5 package (5-pin), max output drive ±32 mA at 3.3 V, wider temp range (–40 to +125 °C) | Requires different footprint; higher drive supports heavier capacitive loads but larger board area | Select when board space permits larger SOT-23 and higher output current is needed |
| 74AUP1G04GW,125 | Lower VCC range (0.8–3.6 V), lower ICC (max 0.5 μA), slower tpd (max 11.4 ns at 3.0 V), same SOT353-1 package | Optimized for ultra-low-power always-on circuits; unsuitable for 5 V interface or high-speed inversion | Select only for sub-μA standby power budgets where speed and voltage range are secondary |
Compared with SN74LVC1G04DBVR, the 74LVC1GU04GM,115 offers superior board-area efficiency in XSON6 but trades 8 mA output drive; versus 74AUP1G04GW,125, it delivers 8× higher speed and 5 V tolerance at the cost of 8× higher quiescent current.
Availability
74LVC1GU04GM,115 is available at Aetrix Electronics and suitable for crystal oscillator design, level-shifting interfaces, linear amplifier stages, and MCU peripheral buffering requiring stable component supply across automotive, industrial, and portable electronics programs.
Supply support for 74LVC1GU04GM,115 includes scheduled delivery planning, volume procurement assistance, BOM continuity management, traceable sourcing, and lifecycle availability coordination for OEM customers, industrial embedded developers, connected-device designers, and electronics production programs.
Manufacturer
Nexperia is a global semiconductor expert headquartered in Nijmegen, Netherlands, specializing in high-performance logic, analog, and MOSFET solutions for automotive, industrial, and consumer markets.
The 74LVC logic family targets high-speed, low-power, mixed-voltage digital interfacing applications, with the 74LVC1GU04GM,115 specifically engineered for space-constrained oscillator and signal conditioning roles in harsh-temperature environments.
FAQ
Is the 74LVC1GU04GM,115 pin-compatible with other 74LVC1G-series inverters?
No. The 74LVC1GU04GM,115 uses a 6-terminal XSON6 (SOT886) package with two no-connect pins, whereas most 74LVC1G inverters use 5-pin packages like SOT353-1 or SOT753. Pin mapping differs: SOT886 assigns VCC to pin 6 and GND to pin 3, while SOT353-1 places VCC on pin 5 and GND on pin 3. Physical and electrical compatibility requires explicit validation per package drawing.
Can the 74LVC1GU04GM,115 be used as a linear amplifier without external biasing components?
No. Linear operation requires external DC biasing: a feedback resistor (R1 ≥ 3 kΩ) from output to input and a load resistor (R2 ≤ 1 MΩ) from input to VCC to set the operating point near VCC/2. Without these, the device operates in saturation as a digital inverter. Figure 8 in the Nexperia datasheet specifies the exact resistor values and AC coupling capacitor (1 µF) needed for stable linear gain.
What is the maximum capacitive load the 74LVC1GU04GM,115 can drive while maintaining specified propagation delay?
The datasheet specifies dynamic characteristics with CL = 30 pF (VCC ≤ 2.7 V) and CL = 50 pF (VCC ≥ 3.0 V). At VCC = 3.3 V, tpd remains within 1.6–3.7 ns up to 50 pF. Driving >50 pF increases delay nonlinearly and may cause ringing; for >100 pF loads, series termination or buffer staging is recommended to maintain signal integrity and timing margin.
Does the 74LVC1GU04GM,115 support hot-swap or live-insertion into a powered system?
No. While inputs tolerate 5.5 V independent of VCC, the device lacks power-on reset, bus-hold, or Ioff protection. Applying VCC after signal inputs may cause undefined output states or excessive ICC due to internal parasitic paths. Always power VCC before applying input signals, and use series resistors (≥100 Ω) on inputs during hot-swap scenarios to limit current during transitional states.
74LVC1GU04GM,115 Specifications
- Product attributes
- Attribute value
- Manufacturer:
- Nexperia USA Inc.
- Series:
- 74LVC
- Package/Case:
- 6-XFDFN
- Packaging:
- Tape & Reel (TR)
- Product Status:
- Active
- Logic Type:
- Inverter
- Number of Circuits:
- 1
- Number of Inputs:
- 1
- Features:
- -
- Voltage - Supply:
- 1.65V ~ 5.5V
- Current - Quiescent (Max):
- 4 µA
- Current - Output High, Low:
- 32mA, 32mA
- Input Logic Level - Low:
- 0.33V ~ 1.1V
- Input Logic Level - High:
- 1.32V ~ 4.4V
- Max Propagation Delay @ V, Max CL:
- 4ns @ 5V, 50pF
- Operating Temperature:
- -40°C ~ 125°C (TA)
- Grade:
- -
- Qualification:
- -
- Mounting Type:
- Surface Mount
- Supplier Device Package:
- 6-XSON, SOT886 (1.45x1)
74LVC1GU04GM,115 FAQ
1.How can I place an order for 74LVC1GU04GM,115 through Aetrix?
Please submit a Request for Quotation (RFQ) for 74LVC1GU04GM,115 on Aetrix. Our sales agent will provide a competitive quotation and guide you through the order confirmation once you accept the terms.
2.Are the price and stock information for 74LVC1GU04GM,115 reliable?
The price and inventory of 74LVC1GU04GM,115 are updated periodically and may fluctuate due to market conditions. Stock and pricing data are typically refreshed every 24 hours. Quotation validity for 74LVC1GU04GM,115 is usually 5 days.
3.What payment methods are accepted for 74LVC1GU04GM,115?
We accept Wire Transfer, PayPal, Credit Card, Western Union, MoneyGram, and Escrow for 74LVC1GU04GM,115 transactions.
Note: Certain payment methods may incur a processing fee.
4.How is shipping managed for 74LVC1GU04GM,115?
74LVC1GU04GM,115 orders can be shipped via leading logistics carriers, including DHL, UPS, FedEx, TNT, or Registered Mail.
Once your 74LVC1GU04GM,115 order is processed, you will receive an email with the shipment details and tracking number.
Note: Tracking information may take up to 24 hours to appear. Express delivery typically takes 3–5 business days.
5.How can I obtain technical support or documentation for 74LVC1GU04GM,115?
For technical support, including 74LVC1GU04GM,115 datasheets, pinout diagrams, or application guidance, please contact our engineering support team. They can provide detailed documentation and assistance for your 74LVC1GU04GM,115 requirements.
6.How does Aetrix verify that 74LVC1GU04GM,115 is sourced from the original manufacturer or authorized distributors?
All 74LVC1GU04GM,115 products on Aetrix are procured from qualified distributors and authorized channels. Our dedicated quality assurance team conducts strict verification, including traceability checks and, if necessary, third-party testing. This ensures that 74LVC1GU04GM,115 meets industry standards.
7.What is the process for return or replacement of 74LVC1GU04GM,115?
All 74LVC1GU04GM,115 units undergo pre-shipment inspection (PSI). If there is an issue with 74LVC1GU04GM,115, returns or replacements are accepted under the following conditions:
1.Quantity discrepancies, incorrect items, or visible external defects (such as breakage or corrosion), acknowledged by Aetrix.
2.The issue is reported within 90 days of delivery.
3.The 74LVC1GU04GM,115 part is unused and in its original packaging.
Return procedure for 74LVC1GU04GM,115:
1.Submit a request within 90 days.
2.Obtain a Return Material Authorization (RMA) from Aetrix.
74LVC1GU04GM,115 Tags
-
SN74LVC1G14DBVR
Texas Instruments
-
SN74LVC1G14DCKR
Texas Instruments
-
SN74AHC1G14DBVR
Texas Instruments
-
SN74LVC1G08DBVR
Texas Instruments
-
SN74LVC1G08DCKR
Texas Instruments
-
SN74LVC1G32DCKR
Texas Instruments
-
SN74LVC1G04DBVR
Texas Instruments
.jpg)
-
74LVC1G08GW,125
Nexperia USA Inc.
-
SN74LVC1G04DCKR
Texas Instruments
-
SN74AHC1G08DBVR
Texas Instruments
-
SN74LVC1G32DBVR
Texas Instruments
-
SN74AHCT1G08DBVR
Texas Instruments
Tech Hub
Operational amplifier guide covering op amp basics, feedback, ideal vs real op amps, common configurations, buffer circuits, offset, bias current, gain-bandwidth, slew rate, rail-to-rail limits and sel…
Jumper cables guide covering safe connection order, red and black clamp placement, final ground connection, cable gauge, length, clamp quality, copper vs CCA cables, jump starter comparison and battery…
LDO regulator guide covering low dropout voltage, power dissipation, thermal design, PSRR, output noise, capacitor stability, adjustable LDO circuits, LDO vs buck converter and datasheet selection chec…
Conditional Access Module guide covering CAM meaning, CI/CI+ interface, smart card authorization, DVB security workflow, TV and set-top box compatibility, internal electronics, ESD protection, connecto…
Guide to electronic component obsolescence covering EOL risk, PCN/PDN notices, last-time buy planning, replacement options, form-fit-function validation, counterfeit risk and BOM lifecycle management.
18650 battery guide covering lithium-ion cell basics, 3.6V/3.7V voltage, 4.2V charging, mAh and Wh capacity, protected cells, chargers, BMS, series-parallel packs, holders, welding and sourcing checks.…
Hall effect sensor guide covering working principle, linear and digital sensors, Arduino circuits, current sensing, speed detection, automotive applications, A3144 examples, signal filtering and datash…
Product Change Notification guide for electronic components, covering PCN meaning, PCN vs PDN/EOL, common change types, risk levels, form-fit-function review, engineering validation, BOM control, LTB/L…
A practical guide to blend door actuators, covering HVAC function, symptoms, location, AC and heater issues, reset and calibration, replacement cost, electrical diagnosis, compatibility checks, and rep…
Engineering guide to Raspberry Pi alternatives, covering chip-level differences, Orange Pi, ROCK, Jetson, Banana Pi, NanoPi, Compute Module, Pico, GPIO, camera, HAT compatibility, and replacement risks…

