| Distributor | Stock | Pricing | MOQ | PKG | Lead Time | Date Code | On Order Quantity | On Order Delivery | |
|---|---|---|---|---|---|---|---|---|---|
|
3,238 pcs
|
3238 pcs | On Request | 1 | On Request | On Request | On Request | On Request | On Request | |
|
10 pcs
|
10 pcs | On Request | 1 | On Request | On Request | On Request | On Request | On Request |
| Category | |
| Manufacturer Name | |
| Current | |
| Input Capacitance | |
| Latch-up Performance | |
| Logic Type | |
| Mounting Type | |
| Number of Bits per Element | |
| Number of Elements | |
| Operating Temperature | |
| Output Type | |
| Supplier Device Package | |
| Supplier Package | |
| Supply Current | |
| Voltage |
The SN74AUP1G126DCKR is a single-channel, non-inverting buffer IC from Texas Instruments, featuring 3-state outputs. This device is designed for low-power applications and operates across a wide supply voltage range from 0.8V to 3.6V, making it suitable for mixed-voltage systems.
Key electrical characteristics include a low supply current of 0.9µA maximum and fast propagation delay. The output can be driven to a high-impedance state, controlled by the output enable pin. It supports over-voltage tolerant inputs and partial power-down operation via the Ioff feature.
Packaged in a compact SC-70-5 surface-mount package, the SN74AUP1G126DCKR is ideal for space-constrained designs. Its operating temperature range is -40°C to 85°C, ensuring reliability in various environmental conditions. The device also features input hysteresis for improved noise immunity and balanced outputs.
This buffer gate is suitable for point-to-point applications and general-purpose logic buffering where low power consumption and high speed are required.
| Qty | Low | High |
|---|---|---|
| 1+ | $0.12 | $0.12 |
Estimated market price range - modelled values for guidance only, not live distributor offers.
The device operates from 0.8V to 3.6V.
It comes in a SC-70-5 surface mount package.
The maximum propagation delay is 4.6 ns at 3.3V, with a typical range of 5-10 ns.
The maximum supply current is 0.9 microamperes.