
Allicdata Part #: | SY100EL16VFZCTR-ND |
Manufacturer Part#: |
SY100EL16VFZC TR |
Price: | $ 0.00 |
Product Category: | Integrated Circuits (ICs) |
Manufacturer: | Microchip Technology |
Short Description: | IC RCVR DIFF 5V/3.3V 8-SOIC |
More Detail: | Differential Receiver IC 8-SOIC |
DataSheet: | ![]() |
Quantity: | 1000 |
1 +: | 0.00000 |
Series: | 100EL |
Packaging: | Tape & Reel (TR) |
Part Status: | Obsolete |
Logic Type: | Differential Receiver |
Supply Voltage: | 3.3V, 5V |
Number of Bits: | 1 |
Operating Temperature: | -40°C ~ 85°C |
Mounting Type: | Surface Mount |
Package / Case: | 8-SOIC (0.154", 3.90mm Width) |
Supplier Device Package: | 8-SOIC |
Base Part Number: | 100EL16 |
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Logic - Specialty Logic
The SY100EL16VFZC TR is a member of a family of Logic chips designed for use in high-speed applications. Many of the features of this type of logic are useful in a wide variety of applications, including military and mission-critical applications.
The SY100EL16VFZC TR logic chip contains 16 logic drivers, each with 2-levels of voltage control and 16 gate loads. This allows high-speed switching between different levels of logic signals, making it well-suited for 14-bit high-speed applications such as ATE and mission-critical applications. The chip also features power-on reset, input filtering, and two-stage output buffering to reduce jitter and crosstalk.
The SY100EL16VFZC TR logic chip has several primary application fields. One of the main areas this chip is designed for is critical application logic. This type of logic is used in ATE, mission control and satellite communications, as well as in space and military applications. It is also used in industrial and automation control applications, where the two-stage output buffering is used to reduce noise and enhance system reliability.
The SY100EL16VFZC TR logic chip is also used in digital signal processing. This type of logic is typically used in high-speed digital signal processing applications, such as DSP hardware, as well as in digital vector graphic accelerators. It is well-suited for high-speed, high-resolution applications where precision is critical. In these applications, the SY100EL16VFZC TR logic chip is used to condition, process, and output digital signals.
The SY100EL16VFZC TR logic chip also has uses in telecommunications. The chip is designed to impedance match high-speed signals, making it ideal for telecommunications applications. It is used to convert analog signals to digital, as well as to support high-speed switching of signals within a communications system. It is also used to isolate and control signals between multiple nodes in a telecommunications system.
The SY100EL16VFZC TR logic chip is based on an advanced logic architecture, which allows it to operate with fast switching speeds, even in high-speed data applications. Its two-stage output buffering helps reduce jitter and crosstalk between signals, making it suitable for a wide range of applications. In order to understand the operation of the chip, it is important to understand its working principle.
The basic working principle of the SY100EL16VFZC TR logic chip is the same as most other logic chips. It takes digital inputs that represent the state of two logic elements (high or low), then converts them into two logic levels. The logic state is then output to the logic elements, allowing them to be used as \'interpreters\' for the logic elements.
The chip also has several levels of control, which can be used to control the flow of signals. This includes control of the timing of the signals, as well as the ability to gate signals and enable or disable certain signals. Additionally, the chip uses its two-stage output buffer to reduce crosstalk and jitter between signals.
The SY100EL16VFZC TR logic chip is a highly advanced logic chip, designed for use in a variety of high-speed applications. Its two-stage output buffering helps reduce jitter and crosstalk, while its multiple voltage levels help to make it suitable for a wide range of applications. Furthermore, its fast switching speed makes it ideal for digital signal processing applications, telecommunications, and critical application logic.
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