NLV17SZ08DFT2G Allicdata Electronics

NLV17SZ08DFT2G Integrated Circuits (ICs)

Allicdata Part #:

NLV17SZ08DFT2GOSTR-ND

Manufacturer Part#:

NLV17SZ08DFT2G

Price: $ 0.18
Product Category:

Integrated Circuits (ICs)

Manufacturer: ON Semiconductor
Short Description: IC GATE AND 1CH 2-INP SC88A
More Detail: AND Gate IC 1 Channel SC-88A (SC-70-5/SOT-353)
DataSheet: NLV17SZ08DFT2G datasheetNLV17SZ08DFT2G Datasheet/PDF
Quantity: 3000
3000 +: $ 0.16443
6000 +: $ 0.15309
15000 +: $ 0.14742
30000 +: $ 0.14175
Stock 3000Can Ship Immediately
$ 0.18
Specifications
Current - Quiescent (Max): 1µA
Package / Case: 5-TSSOP, SC-70-5, SOT-353
Supplier Device Package: SC-88A (SC-70-5/SOT-353)
Mounting Type: Surface Mount
Operating Temperature: -55°C ~ 125°C
Max Propagation Delay @ V, Max CL: 4.5ns @ 5V, 50pF
Logic Level - High: --
Logic Level - Low: --
Current - Output High, Low: 32mA, 32mA
Series: Automotive, AEC-Q100, 17SZ
Voltage - Supply: 1.65 V ~ 5.5 V
Features: --
Number of Inputs: 2
Number of Circuits: 1
Logic Type: AND Gate
Part Status: Active
Packaging: Tape & Reel (TR) 
Description

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NLV 17SZ08DFT2G application field and working principle

NLV 17SZ08DFT2G is a type of logic-gates and inverters, which is a 8-bit buffer/line driver with 3-state outputs. This type of device is useful in bus-oriented system, where it is assumed that the outputs are either high or low, when the inputs are high. With NLV 17SZ08DFT2G in place, the outputs can be switched to high, low, or high-impedance. As a result, the device can be used to achieve both logic operations and wide data transmission applications.

In terms of its technical specifications, NLV 17SZ08DFT2G has a switch time of 20ns, with an input low voltage of 0.8V, and an input high voltage of 2.0V. It also supports high-speed data transmission of up to 100M bps, with a maximum transition current of 25mA and a maximum capacitive loading of 25pF. NLV 17SZ08DFT2G is available in several packages, including DIP, QSOP, SOIC, and SOT-23, among others.

Working Principle

In order to understand the working principle of NLV 17SZ08DFT2G, one must first understand the basic principles of logic-gates and inverters. Logic-gates, such as AND, OR, and NOT, are used to process information. They take two binary inputs, and based on the operation being performed, they produce an output. An inverter is a type of logic-gate that takes one binary input and produces a complementary output. In other words, if the input is 1, the output is 0; and if the input is 0, the output is 1.

NLV 17SZ08DFT2G works by taking a binary input and producing either a logic low or logic high output (or a high-impedance output when inputs are high). It operates in a similar manner to an inverter, but with the addition of the three-state output. This allows the device to drive multiple loads simultaneously and makes it suitable for bus-oriented applications.

The device works by comparing the input to the output and deciding whether to make the output high, low, or high-impedance. If the input is 1, the output is high, and if the input is 0, the output is low. However, when the input is high-impedance, the output is also placed in high-impedance state, effectively disconnecting it from the load.

Applications

NLV 17SZ08DFT2G is commonly used in bus-oriented systems, where multiple loads have to be driven simultaneously. It is also used in applications where data transmission speeds are critical, such as in digital video broadcasting (DVB) systems. The device can also be used in logic operations, where it can be used to drive multiple logic gates with multiple inputs. Other applications include microprocessor and memory systems, programmable logic controllers (PLCs), and instrumentation systems.

In summary, NLV 17SZ08DFT2G is a type of logic-gates and inverters, which is useful for bus-oriented applications and for systems where data transmission speed is critical. It works by comparing the input to the output and deciding whether to make the output high, low, or high-impedance. This device is commonly used in bus-oriented systems, digital video broadcasting systems, logic operations, microprocessor and memory systems, PLCs, and instrumentation systems.

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

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