NL17SHT00P5T5G Allicdata Electronics
Allicdata Part #:

NL17SHT00P5T5G-ND

Manufacturer Part#:

NL17SHT00P5T5G

Price: $ 0.04
Product Category:

Integrated Circuits (ICs)

Manufacturer: ON Semiconductor
Short Description: IC GATE NAND 1CH 2-INP SOT953
More Detail: NAND Gate IC 1 Channel SOT-953
DataSheet: NL17SHT00P5T5G datasheetNL17SHT00P5T5G Datasheet/PDF
Quantity: 1000
8000 +: $ 0.03969
Stock 1000Can Ship Immediately
$ 0.04
Specifications
Current - Output High, Low: 8mA, 8mA
Base Part Number: 17SHT00
Package / Case: SOT-953
Supplier Device Package: SOT-953
Mounting Type: Surface Mount
Operating Temperature: -55°C ~ 125°C
Max Propagation Delay @ V, Max CL: 7.9ns @ 5V, 50pF
Logic Level - High: 1.4 V ~ 2 V
Logic Level - Low: 0.53 V ~ 0.8 V
Series: 17SHT
Current - Quiescent (Max): 1µA
Voltage - Supply: 3 V ~ 5.5 V
Features: --
Number of Inputs: 2
Number of Circuits: 1
Logic Type: NAND Gate
Part Status: Active
Packaging: Tape & Reel (TR) 
Description

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NL17SHT00P5T5G are logic gates and inverters that are commonly used in digital and analog circuits. They are commonly used in computers, as well as in a variety of other industrial and consumer electronics applications. The NL17SHT00P5T5G is a high-voltage, high-temperature resistant and temperature-stable, low-power N-channel MOSFET (Metal-Oxide semiconductor field effect transistor). The device is designed to offer extremely low input and output currents, very low on-resistance and high power supply rejection ratio (PSRR) in a very compact package. In addition, NL17SHT00P5T5G devices also offer excellent power and capacitance tolerances over temperature and humidity, as well as true high speed switching.

The NL17SHT00P5T5G operates as an open-drain gate when the gate voltage is kept low, allowing current to flow from drain to source. When the gate voltage is raised, the device is in the off-state, where no current can flow. The device is also capable of operating in a high-impedance state, where the drain-source current is negligible, making it ideal for analog circuits. When used for logic and inverter applications, the device can be used to drive up to 8A of current and up to 32V of voltage from the drain to the source.

The principle of NL17SHT00P5T5G can be understood as follows: A voltage difference between the gate and source side of the device generates an electric field. This electric field generates a flow of electrons called “inversion channel” between the source and drain regions. The flow of electrons is also referred to as an “inversion region” or “depletion region”. This inversion region is equivalent to a depletion channel in an N-channel MOSFET, where the channel width is modulated by the gate voltage, therefore modulating the flow of electrons. The inversion region is established proportional to the voltage difference between the gate and the source, therefore allowing for the modulation of the drain-source current.

The NL17SHT00P5T5G can be used in many applications from automotive to audio/video electronics, and from data communications to medical electronics. Some of the applications include optimizing power levels in switching power supplies, providing wide dynamic range conversion in high-resolution video systems, providing PWM control for brushless motors, providing amplification in data transmission circuits, and providing switching logic in microcontrollers for embedded systems. This versatility has made the NL17SHT00P5T5G a popular choice for many applications.

The NL17SHT00P5T5G is an essential part of many digital and analog circuits due to its low input and output currents, low on-resistance and high power supply rejection ratio (PSRR). It is also temperature-stable, meaning that it is highly reliable even when exposed to extreme temperatures and humidity. This device is ideal for high-frequency switching and analog circuits due to its true high speed switching characteristics.

In conclusion, the NL17SHT00P5T5G is a versatile logic gate and inverter device that offers excellent performance. It is capable of driving high-currents and high-voltages while offering very low input and output currents, low on-resistance, and a high power supply rejection ratio. Additionally, it is highly temperature-stable and has true high-speed switching characteristics which make it an ideal choice for both digital and analog circuits.

The specific data is subject to PDF, and the above content is for reference

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