NLV14538BDWR2G Allicdata Electronics
Allicdata Part #:

NLV14538BDWR2G-ND

Manufacturer Part#:

NLV14538BDWR2G

Price: $ 0.32
Product Category:

Integrated Circuits (ICs)

Manufacturer: ON Semiconductor
Short Description: IC MULTIVIBRATOR DUAL 16SOIC
More Detail: Monostable Multivibrator 95ns 16-SOIC
DataSheet: NLV14538BDWR2G datasheetNLV14538BDWR2G Datasheet/PDF
Quantity: 1000
1000 +: $ 0.28067
Stock 1000Can Ship Immediately
$ 0.32
Specifications
Series: Automotive, AEC-Q100, 4000B
Packaging: Tape & Reel (TR) 
Part Status: Not For New Designs
Logic Type: Monostable
Independent Circuits: 2
Schmitt Trigger Input: Yes
Propagation Delay: 95ns
Current - Output High, Low: 8.8mA, 8.8mA
Voltage - Supply: 3V ~ 18V
Operating Temperature: -55°C ~ 125°C
Mounting Type: Surface Mount
Package / Case: 16-SOIC (0.295", 7.50mm Width)
Supplier Device Package: 16-SOIC
Description

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Multivibrators are electronic circuits used to implement a variety of signal-processing tasks. Most commonly, they are used to generate periodic oscillations from an input signal, or to produce a square wave from an input signal that passes through a defined threshold. Typically, multivibrators have two stable states and can switch between them as needed. NLV14538BDWR2G is a type of IC (integrated circuit) used as a multivibrator in a wide variety of applications.

NLV14538BDWR2G combines two reliable, low power CMOS switching transistors into a single, small footprint device. The circuit is designed to drive a load up to 400mA with a peak current capability of up to 1A. The bipolar transistors used in this IC provide low switching times, fast response and low on-resistance for efficient circuit operation. The circuit is supplemented by a temperature-compensated current limiter to provide maximum device protection.

NLV14538BDWR2G is designed for applications requiring low jitter, clean clock outputs over a wide range of temperatures. It is especially suitable for high-performance systems such as communications, digital signal processing (DSP), and datacom. Examples of applications that can benefit from NLV14538BDWR2G include pulse-width modulation (PWM), low jitter clock generation, level shifting, and wave-shaping. The device can be used as an oscillator with a frequency of up to 1MHz.

NLV14538BDWR2G works by using two transistors to create an astable multivibrator, a circuit that can oscillate at a set frequency while producing a series of symmetrical square waves. When the circuit is powered up, the two transistors are biased in different ways and the voltage present at the junction of the circuit is high. This causes current to flow through the first transistor, which then acts as an emitter. This causes the second transistor to become active, and its collector current begins to flow, causing the voltage of the junction to drop. This causes the first transistor to become inactive, and the collector current of the second transistor ceases to flow. This causes the junction\'s voltage to rise again, repeating the cycle.

NLV14538BDWR2G is designed to drive a wide variety of loads, from low current application such as microcontrollers to more powerful loads such as common-drain FETs. The device has an adjustable delay time and is capable of providing up to 400mA of output current. The delay time is adjustable between 0.1µs and 5ms and the device can be arranged in a variety of configurations, such as astable multivibrator and astable monostable multivibrator. Additionally, NLV14538BDWR2G is specified to operate over a temperature range of -40°C to 85°C.

NLV14538BDWR2G is an ideal solution for high performance system applications due to its low power consumption, low cost, and superior performance features. It has excellent static and dynamic characteristics and provides a low jitter clock with a frequency range of up to 1MHz. The device is also capable of driving a wide variety of loads over a wide temperature range. NLV14538BDWR2G offers superior reliability in harsh environments and can be used in a wide variety of applications, ranging from low current applications to powerful motor drive applications.

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

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