NLSV2T244DR2G Allicdata Electronics
Allicdata Part #:

NLSV2T244DR2GOSTR-ND

Manufacturer Part#:

NLSV2T244DR2G

Price: $ 0.43
Product Category:

Integrated Circuits (ICs)

Manufacturer: ON Semiconductor
Short Description: IC TRNSLTR UNIDIRECTIONAL 8SOIC
More Detail: Voltage Level Translator Unidirectional 1 Circuit ...
DataSheet: NLSV2T244DR2G datasheetNLSV2T244DR2G Datasheet/PDF
Quantity: 5000
2500 +: $ 0.39690
5000 +: $ 0.37706
12500 +: $ 0.36288
Stock 5000Can Ship Immediately
$ 0.43
Specifications
Input Signal: --
Base Part Number: NLSV2T244
Supplier Device Package: 8-SOIC
Package / Case: 8-SOIC (0.154", 3.90mm Width)
Mounting Type: Surface Mount
Features: Over Voltage Protection, Power-Off Protection
Operating Temperature: -40°C ~ 85°C (TA)
Data Rate: --
Output Type: Tri-State, Non-Inverted
Output Signal: --
Series: --
Voltage - VCCB: 0.9V ~ 4.5V
Voltage - VCCA: 0.9V ~ 4.5V
Channels per Circuit: 2
Number of Circuits: 1
Channel Type: Unidirectional
Translator Type: Voltage Level
Part Status: Active
Packaging: Tape & Reel (TR) 
Description

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Logic translators, level shifters, are devices that are employed in many industries. These devices will change some properties of a digital signal, such as its voltage or timing, while keeping all other properties intact. This can be used to communicate between different types of logic systems and devices. One example is the NLSV2T244DR2G logic translator, which is widely used in the electronics industry.

The NLSV2T244DR2G logic translator chip is a type-2 translator, which translates signals from two voltage levels (1.2V and 3.3V) between two logic families, CMOS and TTL. The transmitter section of the chip is essentially responsible for shifting the input signal from 1.2V to 3.3V and the receiver section is responsible for shifting from 3.3V to 1.2V. The TTL logic family uses outputs which range from 0.45V to 0.72V for logic 0s, and 2.4V to 3.3V for logic 1s. On the other hand, CMOS logic uses 0 and 5V (Vdd) for logic 0s and 1s respectively. These are the standard voltages used, however there are cases where other voltages may be applicable.

The general application field of NLSV2T244DR2G is increasing the speed and reliability of the communication between different logic families. Since the voltage levels can be changed easily, the circuits need not wait for the voltage levels to stabilize while interacting with different logic families. Therefore, the communication becomes more reliable and the data can be transferred without any errors.

The NLSV2T244DR2G device can also be used to restore noise-induced errors in the communication between two logic families. This is done by monitoring the noise using a low-noise current or voltage monitor and adjusting the logic family interface accordingly. This is useful for situations where the outputs are sensitive to interference.

The working principle of the NLSV2T244DR2G is based on the idea of bidirectional translators. On the transmitter side, the chip converts a 1.2V signal to a 3.3V signal, while on the receiver side, it converts a 3.3V signal to a 1.2V signal. This ensures that the signals remain compatible between the two logic families. The device also provides EMI protection and noise filtering on both the transmitter and receiver sides, which improves communication between the two logic families.

The NLSV2T244DR2G is also capable of selecting output levels that are suitable for specified logic families. This ensures that the logic levels are appropriate even in the presence of noise. Moreover, the chip also provides open-drain CMOS outputs that allow for unlimited current load. This increases the flexibility of the interface, allowing for a wide range of applications.

In conclusion, the NLSV2T244DR2G is a widely used logic translator device that is employed in various industries. It is responsible for increasing the speed, reliability and integrity of the communication between two different logic families, ensuring that compatible voltages are transmitted and received. In addition, the device also provides noise filtering and EMI protection, further increasing the speed and reliability of the communication.

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

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