SN74LVC1G06 Open-Drain Inverter

NYFEA SN74LVC1G06 is a single inverting buffer and driver with an open-drain output, specified for 1.65 V to 5.5 V VCC operation. Input A and open-drain output Y accept 0 V to 5.5 V, Ioff supports partial-power-down applications, and SOT23-5 and SC70-5 package options are listed.

Product scope: A HIGH input turns the output transistor on and pulls Y LOW. A LOW input turns the transistor off and leaves Y in the high-impedance state. An external pull-up resistor is required to create a valid HIGH level; the device does not source output current.

Use the current controlled PDF for threshold limits, output loading, switching conditions, package tolerances, tape orientation and production-release decisions.

Photorealistic NYFEA SN74LVC1G06 SOT23-5 open-drain inverter product appearance
NYFEA SN74LVC1G06 SOT23-5 product appearance with the full model shown for identification. Use the controlled package drawing for receiving inspection and PCB decisions.
LOGIC FUNCTIONInverting open-drain driver
SUPPLYVCC 1.65 V to 5.5 V
I/O RANGEVI and VO 0 V to 5.5 V
TEMPERATURE-40 °C to +125 °C ambient

Product Overview and Selection Scope

SN74LVC1G06 combines one inverting input stage with an open-drain NMOS output. It can pull a shared node LOW but cannot actively drive it HIGH. The specified VCC operating range is 1.65 V to 5.5 V, and both input A and output Y accept 0 V to 5.5 V under the recommended conditions.

Output architecture

When A is HIGH, Y is pulled LOW. When A is LOW, Y becomes high impedance and the external pull-up network establishes the HIGH level.

Wired logic

Multiple compatible open-drain outputs may share one pull-up to implement active-low wired-OR or active-high wired-AND behavior.

Partial power-down

Ioff is specified with VCC = 0 V and VI or VO = 5.5 V, limiting current through the powered-down device path.

Package choice

SOT23-5 and SC70-5 share the same pin assignment but have different footprints, markings and thermal impedances.

Selection boundary: The PDF does not specify Schmitt-trigger hysteresis, an internal pull-up, a guaranteed pull-up resistor value, tri-state control independent of A, or end-product qualification. Pull-up voltage, resistance, bus capacitance, LOW-state sink current, rise time and static power are system design responsibilities.

Logic Function, Truth Table and Pin Assignment

The logical inversion is implemented through an open-drain output: A = H produces Y = L, while A = L produces Y = Z. The external pull-up converts Z into a usable HIGH level.

SN74LVC1G06 open-drain inverter symbol and H-L / L-Z truth table
Open-drain inverter function. Z means high-impedance OFF-state, not an actively driven HIGH.
SN74LVC1G06 SOT23-5 and SC70-5 top-view pin configuration
Common top view: pin 1 N.C., pin 2 A, pin 3 GND, pin 4 Y and pin 5 VCC.
PinNameTypeFunctionEngineering note
1N.C.-Not connectedDo not use as a signal or supply connection.
2AInputInverting logic inputHold at VCC or GND when unused.
3GNDPowerGroundUse a short return to the bypass capacitor and LOW-current path.
4YOutputOpen-drain outputRequires an external pull-up; may share a node only with compatible open-drain outputs.
5VCCPowerSupplyPlace local decoupling close to pins 5 and 3.

Ordering Codes and Package Selection

Ordering numberTemperature rangePackageTop markingMSLPacking
SN74LVC1G06DCKR-40 °C to +125 °CSC70-5 / SOT353 equivalentCT5MSL 3Tape and reel, 3,000 units
SN74LVC1G06DBVR-40 °C to +125 °CSOT23-5C06JMSL 3Tape and reel, 3,000 units

Additional lot, date, vendor, logo or environmental markings may appear. Confirm the full order code, package dimensions, marking and reel orientation during receiving inspection.

Recommended Operating Conditions and Absolute Limits

Recommended operating conditions define the functional design range. Absolute maximum ratings are stress limits only and do not establish normal operation or long-term reliability.

ParameterConditionMinimumMaximumUnit
Supply voltage, VCCOperating1.655.5V
Supply voltage, VCCData retention only1.5-V
High-level input, VIHVCC = 1.65 to 1.95 / 2.3 to 2.7 / 3.0 to 3.6 / 4.5 to 5.5 V0.65 × VCC / 1.7 / 2.2 / 0.7 × VCC-V
Low-level input, VILSame four VCC ranges-0.15 × VCC / 0.3 / 0.4 / 0.15 × VCCV
Input voltage, VIOperating05.5V
Open-drain output voltage, VOOperating05.5V
Input rise/fall, tr or tfVCC = 1.8 V ±0.15 V or 2.5 V ±0.2 V-20ns/V
Input rise/fall, tr or tfVCC = 3.3 V ±0.3 V-10ns/V
Input rise/fall, tr or tfVCC = 5 V ±0.5 V-5ns/V
Ambient temperature, TAOperating-40125°C

Absolute maximum and handling limits

ParameterConditionMinimumMaximumUnit
Supply voltageVCC-0.56.5V
Input voltageVI-0.56.5V
Output voltageHigh-impedance, power-off, or LOW state-0.56.5V
Input clamp currentVI < 0 V-50mA
Output clamp currentVO < 0 V-50mA
Continuous output currentIO±50mA
Continuous VCC or GND current-±100mA
Junction temperatureTJ-65150°C
Storage temperatureTstg-65150°C
Thermal impedanceθJA = 230 °C/W for SOT23-5 and 380 °C/W for SC70-5, calculated in accordance with JESD-51.
HBM / CDM / MM±6000 V / ±1500 V / ±200 V. Handle in an ESD-protected area.
Output boundaryY can sink current and enter high impedance; it does not source a HIGH level. Keep pull-up voltage at or below 5.5 V.

DC Characteristics and Logic Levels

Full-range limits apply from -40 °C to +125 °C unless otherwise stated. Typical values are at +25 °C. The device specification lists only LOW-state output limits because the open-drain output does not source a HIGH level.

VCC rangeVIH minimumVIL maximumEngineering interpretation
1.65 V to 1.95 V0.65 × VCC0.15 × VCCThresholds scale with supply.
2.3 V to 2.7 V1.7 V0.3 VUse the fixed guaranteed limits.
3.0 V to 3.6 V2.2 V0.4 VUse the fixed guaranteed limits.
4.5 V to 5.5 V0.70 × VCC0.15 × VCCThresholds scale with supply.

LOW output, leakage and supply current

ParameterTest conditionVCCTemperatureLimit or typical valueUnit
VOLIOL = 100 µA1.65 V to 5.5 VFullMaximum 0.1 VV
VOLIOL = 4 / 8 / 16 / 24 / 32 mA1.65 / 2.3 / 3.0 / 3.0 / 4.5 VFullMaximum 0.45 / 0.30 / 0.40 / 0.55 / 0.55 VV
IIA = 5.5 V or GND0 V to 5.5 V+25 °C / FullTypical ±0.1 µA / maximum ±5 µAµA
IoffVI or VO = 5.5 V0 V+25 °C / FullTypical ±0.1 µA / maximum ±10 µAµA
ICCVI = 5.5 V or GND, IO = 01.65 V to 5.5 V+25 °C / FullTypical 0.1 µA / maximum 10 µAµA
ΔICCA = VCC - 0.6 V3 V to 5.5 VFullMaximum 500 µAµA
Pull-up boundary: Select the pull-up so the worst-case LOW current keeps VOL within the receiver's VIL requirement. The HIGH level and rising edge are created by the external network, not guaranteed by SN74LVC1G06.

AC Switching and Test Conditions

The Rev A.1 PDF lists typical propagation-delay values over the full -40 °C to +125 °C range under the stated resistor and capacitive loads. Pull-up resistance, total node capacitance and receiving threshold additionally determine the actual rising edge in an application.

ParameterVCCLoad conditionTemperatureTypical valueUnit
Propagation delay, tpd1.8 V ±0.15 VCL = 30 pF, RL = 1 kΩFull6.4ns
Propagation delay, tpd2.5 V ±0.2 VCL = 30 pF, RL = 500 ΩFull4.5ns
Propagation delay, tpd3.3 V ±0.3 VCL = 50 pF, RL = 500 ΩFull4.2ns
Propagation delay, tpd5.0 V ±0.5 VCL = 50 pF, RL = 500 ΩFull3.7ns
Input capacitance, Ci3.3 VVI = VCC or GND+25 °C4pF
Power-dissipation capacitance, Cpd1.8 / 2.5 / 3.3 / 5.0 Vf = 10 MHz+25 °C3 / 3 / 4 / 6pF
SN74LVC1G06 propagation-delay load circuit and pull-up timing conditions
Propagation-delay load conditions from the PDF, with an application reminder that the external pull-up controls the released-node rise.

Timing boundary: The PDF provides typical values but no guaranteed maximum propagation delay or bus rise-time limit. Do not infer a guaranteed maximum frequency. Measure the finished node across voltage, capacitance, resistor tolerance and temperature.

Pull-Up Design, Power Integrity and PCB Layout

The following circuits are application-design guidance, not guaranteed reference circuits defined by the product specification. Use the PDF limits and validate the complete pull-up network, receiving threshold, wiring capacitance and power sequence.

SN74LVC1G06 open-drain pull-up resistor, wired logic and RC rise-time guidance
Open-drain design model: the pull-up establishes HIGH, the transistor establishes LOW, and total node capacitance controls the released-node rise.
Design checkFirst-order relationRequired validation
LOW-state sink currentIOL ≈ (VPU - VOL) / RPUKeep IOL within the stated VOL test-current conditions and receiver VIL margin.
Released-node riseτ ≈ RPU × CnodeUse the receiver threshold and system timing budget; the PDF does not guarantee a bus rise time.
Static LOW powerP ≈ VPU² / RPUInclude resistor dissipation and device sink power at maximum LOW duty cycle.
Shared wired nodeAny active pull-down forces LOWOnly compatible open-drain outputs may share the node; never connect a push-pull HIGH driver.
  • Keep VPU within the output range: recommended VO is 0 V to 5.5 V, independent of the lower VCC used for the input stage.
  • Do not leave A floating: the PDF requires every unused input to be held at VCC or GND.
  • Place local bypassing close to the device: use a short VCC-to-GND loop and confirm the board PDN.
  • Route the shared node compactly: connector, cable, probe and input capacitance all increase Cnode and slow the released edge.
  • Validate partial power-down: Ioff limits the device path, while the pull-up and other components can still create system back-power routes.

SOT23-5 and SC70-5 Packages, Land Patterns and Packing

Both green package options share the same pin assignment but use different body dimensions, lead pitch, top marking and thermal impedance. Do not substitute one footprint for the other.

SN74LVC1G06 SOT23-5 and SC70-5 package outlines and recommended land patterns
High-resolution package and reference land-pattern summary based on pages 10 and 11 of the supplied specification.
DimensionSOT23-5SC70-5Unit
Overall height A1.050 to 1.2500.900 to 1.100mm
Body length D2.820 to 3.0202.000 to 2.200mm
Body width E1.500 to 1.7001.150 to 1.350mm
Overall lead span E12.650 to 2.9502.150 to 2.450mm
Lead pitch e0.950 BSC0.650 BSCmm
Outer lead pitch e11.800 to 2.0001.300 BSCmm
Lead width b0.300 to 0.5000.150 to 0.350mm
Lead thickness c0.100 to 0.2000.080 to 0.150mm
Lead length L0.300 to 0.6000.260 to 0.460mm
SN74LVC1G06 SOT23-5 and SC70-5 tape-and-reel dimensions
Both packages use a 7-inch reel, 9.5 mm reel width, 8.0 mm carrier tape, 4.0 mm pitch and Q3 pin-1 quadrant; pocket dimensions differ by package.

Application Guidance and Design Limitations

The Rev A.1 specification lists Blu-ray players and home theaters, desktop or notebook PCs, digital video cameras, mobile phones, personal navigation devices and portable media players. In these systems, the device can invert a control signal, level-shift through an external pull-up within the 5.5 V output limit, or combine compatible open-drain sources. These are use contexts, not end-product approvals.

Blu-ray player and home theater iconBlu-ray and Home TheaterCombine active-low status or control lines after selecting the pull-up for sink current and edge rate.
Desktop and notebook computer iconDesktop and Notebook PCsUse for board-level reset, interrupt or status inversion where an open-drain shared node is appropriate.
Digital video camera iconDigital Video CamerasInvert low-speed digital control signals while validating pull-up voltage, capacitance and timing.
Mobile phone iconMobile PhonesEvaluate compact open-drain control paths with complete standby-current and power-sequencing checks.
Personal navigation GPS device iconPersonal Navigation DevicesUse on local status or control nodes after system-level EMC, timing and pull-up validation.

SN74LVC1G06 Engineering FAQs

What logic function does SN74LVC1G06 implement?

It is an inverting open-drain buffer. A HIGH input pulls Y LOW; a LOW input releases Y into the high-impedance state.

What supply range is recommended?

VCC is specified from 1.65 V to 5.5 V for operation. The PDF separately lists 1.5 V as the minimum data-retention supply; data retention does not establish normal logic operation.

Does SN74LVC1G06 require an external pull-up?

Yes. The open-drain output can pull LOW or release the node; it cannot drive HIGH. Choose the pull-up from the required VOL, sink current, capacitance, rise time and static power.

Can the pull-up voltage differ from VCC?

The recommended output range is 0 V to 5.5 V, so a pull-up within that limit can support system-level voltage translation. Verify receiver thresholds, current, timing and sequencing in the complete circuit.

Can multiple outputs share one node?

Compatible open-drain outputs may share a pull-up for wired logic. Do not connect a push-pull output that may actively drive HIGH to the same node.

What propagation-delay values are listed?

Typical full-range tpd values are 6.4 ns at 1.8 V, 4.5 ns at 2.5 V, 4.2 ns at 3.3 V and 3.7 ns at 5 V under the stated loads. No guaranteed maximum is listed.

What does Ioff provide?

Ioff is specified with VCC = 0 V and VI or VO = 5.5 V, with ±10 µA maximum over the full temperature range. It limits the device path but does not eliminate other board-level back-power routes.

Which package should be selected?

SN74LVC1G06DBVR is SOT23-5 with C06J marking. SN74LVC1G06DCKR is SC70-5 with CT5 marking. Both are MSL 3 and packed 3,000 units per reel.

Can input A be left open?

No. The PDF explicitly requires unused inputs to be held at VCC or GND. Pin 1 is N.C. and should not be used as a functional connection.

Do the listed applications establish product certification?

No. The application list identifies possible use contexts only. Qualification, safety, EMC, reliability and production validation remain system responsibilities.

Technical source and design authority

This page summarizes the SN74LVC1G06 Rev A.1 product specification for component evaluation and engineering reference. It does not replace the complete controlled specification. Confirm the current revision, ordering code, marking, pin assignment, pull-up design, logic limits, absolute maximum ratings, DC and AC conditions, package tolerances, PCB layout, assembly process and qualification requirements before production release.

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