SN74ABT541BDBRG4 Allicdata Electronics
Allicdata Part #:

SN74ABT541BDBRG4-ND

Manufacturer Part#:

SN74ABT541BDBRG4

Price: $ 0.56
Product Category:

Integrated Circuits (ICs)

Manufacturer: Texas Instruments
Short Description: IC BUF NON-INVERT 5.5V 20SSOP
More Detail: Buffer, Non-Inverting 1 Element 8 Bit per Element ...
DataSheet: SN74ABT541BDBRG4 datasheetSN74ABT541BDBRG4 Datasheet/PDF
Quantity: 1000
2000 +: $ 0.51285
Stock 1000Can Ship Immediately
$ 0.56
Specifications
Series: 74ABT
Packaging: Tape & Reel (TR) 
Part Status: Active
Logic Type: Buffer, Non-Inverting
Number of Elements: 1
Number of Bits per Element: 8
Input Type: --
Output Type: 3-State
Current - Output High, Low: 32mA, 64mA
Voltage - Supply: 4.5 V ~ 5.5 V
Operating Temperature: -40°C ~ 85°C (TA)
Mounting Type: Surface Mount
Package / Case: 20-SSOP (0.209", 5.30mm Width)
Supplier Device Package: 20-SSOP
Base Part Number: 74ABT541
Description

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The SN74ABT541BDBRG4 is a Buffering Logic device used primarily in digital signal processing. It is mainly employed to reduce static current swings and improve signal integrity. In addition, the SN74ABT541BDBRG4 is designed specifically to improve noise immunity and low EMI, thus making it suitable for use in audio circuits. Further, it is also used for differential signaling in high speed applications where signal bandwidth is significant.

The SN74ABT541BDBRG4 is a dual-channel Buffer, used for signal transmission between two circuits or ASICs. The design includes two independent differential signal buffers, each with a single output. The input signal (A or B) is fed into two inverting buffers (IN1 and IN2) and the output is seen at the two output pins (Y1 and Y2). The differential signal buffer (DSB) is composed of two NAND2 circuits connected in series. The output of each buffer is either high or low, depending on the logic level at the input.

The SN74ABT541BDBRG4 Buffer is implemented using CMOS technology, allowing it to withstand high frequency transients and to provide excellent noise immunity. It also has excellent input and output noise performance, as well as low power consumption. Further, when used as a differential buffer for high-speed communications, it can provide DC level shifting and low jitter output signals.

The Buffer\'s main purpose is to drive the high frequency signals into the receiving circuits without any distortion. To achieve this, the SN74ABT541BDBRG4 employs a driving circuit, which operates in the negative rail supply range. Moreover, the driving circuits have a differential output stage, allowing them to operate in noisy environments. The negative rail supply range further allows the circuit to maintain low-voltage swings, allowing it to reduce the amount of jitter. This helps to ensure that the signals that enter the receiving circuit remain synchronous.

The SN74ABT541BDBRG4 Buffer also works in ultra-low power applications. For example, when used in high-speed communication applications, it uses a low-voltage differential swing (LVDS) driver. This allows the Buffer to drive signals across the communication interface with minimum power consumption levels. In addition, its high-speed current switching capability also makes it ideal for low-power circuits.

The SN74ABT541BDBRG4 Buffer can work in either source or receiver mode, depending on the logic levels of the inputs. In source mode, the two output pins will switch between high or low based on the input signals. While in receiver mode, the two output pins are fixed, and the input signals will either switch the output high or low. This allows the Buffer to be used in both transmitting and receiving applications.

The SN74ABT541BDBRG4 Buffer is ideal for applications that require low power consumption, high noise immunity, and excellent signal integrity. It is also suitable for audio circuits, high-speed communication applications, and ultra-low power applications. In addition, its design offers good noise performance, allowing it to reduce static current swings and improve signal integrity.

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

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