
Allicdata Part #: | SY100EL16VEKC-ND |
Manufacturer Part#: |
SY100EL16VEKC |
Price: | $ 0.00 |
Product Category: | Integrated Circuits (ICs) |
Manufacturer: | Microchip Technology |
Short Description: | IC RCVR DIFF 5V/3.3V 8-MSOP |
More Detail: | Differential Receiver IC 8-MSOP |
DataSheet: | ![]() |
Quantity: | 1000 |
1 +: | 0.00000 |
Series: | 100EL |
Packaging: | Bulk |
Part Status: | Discontinued at Digi-Key |
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-TSSOP, 8-MSOP (0.118", 3.00mm Width) |
Supplier Device Package: | 8-MSOP |
Base Part Number: | 100EL16 |
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Logic Gate devices are used to electrically control the flow of current by taking one or more electrical inputs and creating an output based upon the logical relationship among the inputs. The SY100EL16VEKC is a specialized logic gate specifically designed to provide improved signal integrity while maintaining the versatility of a general purpose logic gate. It is mostly used in communication and signal interface applications involving logic signals with high noise margins.
The SY100EL16VEKC is a low power Schottky device that is capable of providing gate functions for both normal and high speeds in multiple configurations. The SY100EL16VEKC is divided into two logic families, the high speed logic inputs and the low speed logic inputs, each suitable for different application requirements. Each of these logic families has its own unique set of input and output characteristics.
The SY100EL16VEKC utilizes two voltage supply levels, a ‘high’ voltage level and a ‘low’ voltage level. The low level is typically around 2.0V while the high level is typically around 3.3V. This allows the SY100EL16VEKC to offer a wide range of applications while minimizing power consumption, which is critical in many applications. The SY100EL16VEKC low speed inputs are designed to be particularly noise tolerant while the high speed inputs are designed to minimize power consumption by reducing supply voltage when the input is not active.
The SY100EL16VEKC can be used for a variety of applications, including as a general purpose logic gate, voltage level translator, level shifter, and buffered output buffer, among others. In any of these applications, the SY100EL16VEKC offers excellent signal integrity, low power consumption, and a wide range of input and output characteristics. Additionally, the SY100EL16VEKC can be used to create logic functions with low noise margins, such as logic gates with low fanout and logic inverters.
The working principle of the SY100EL16VEKC is relatively simple and straightforward. The SY100EL16VEKC essentially functions as a switch, conducting current from one input, the input, to the output when the conditions set by the logic functions are met. The SY100EL16VEKC operates by understanding the logic of the system in which it is placed and using this logic to determine when to turn on and off the current flow from the input to the output. When the logic conditions set by the logic function of the SY100EL16VEKC are not met, the circuit remains in an open state, not conducting current.
The SY100EL16VEKC is capable of providing very high speed, noise-tolerant gate functions in any of the applications in which it is used. Due to its low-power consumption and high signal integrity, the SY100EL16VEKC is an attractive choice for many communication and signal interface applications. As an example, the SY100EL16VEKC can be used in Ethernet and USB applications, where noise suppression and power conservation are essential.
The SY100EL16VEKC is a reliable, versatile, low-power, and high-speed gate logic circuit designed to provide superior performance in a variety of applications. This specialized logic gate is capable of providing multiple logic functions with enhanced noise tolerances, low power consumption, and minimized power supply voltage. As such, the SY100EL16VEKC is an ideal choice for applications such as Ethernet and USB, where noise tolerance and power conservation are critical.
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