
Allicdata Part #: | MAX3081ESA+T-ND |
Manufacturer Part#: |
MAX3081ESA+T |
Price: | $ 0.00 |
Product Category: | Integrated Circuits (ICs) |
Manufacturer: | Maxim Integrated |
Short Description: | IC TXRX RS485/422 10MBPS 8-SOIC |
More Detail: | 1/1 Transceiver Full RS422, RS485 8-SOIC |
DataSheet: | ![]() |
Quantity: | 1000 |
Series: | -- |
Packaging: | Tape & Reel (TR) |
Part Status: | Active |
Type: | Transceiver |
Protocol: | RS422, RS485 |
Number of Drivers/Receivers: | 1/1 |
Duplex: | Full |
Receiver Hysteresis: | 100mV |
Data Rate: | 115Kbps |
Voltage - Supply: | 4.75 V ~ 5.25 V |
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: | MAX3081 |
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MAX3081ESA+T is a high-speed CMOS transceiver designed for use in fast data communication applications. It is designed to meet the Electrical and Physical requirements of ultra-fast data and audio transmission between any two devices on a single pin, with the low power requirements of today\'s most advanced Electric Vehicles (EVs).
The MAX3081ESA+T is a single-chip transceiver with an analog interface, providing high-speed data transfer between two devices, such as a microcontroller and an LCD, or a memory card and a module. It supports a range of data transfer speeds from low-power 1 Mbps to ultra-fast 10 Gbps. It provides user-selectable output levels ranging from 0.4V to 5V and can be configured for standard or differential output. The chip features separate power supply and digital isolation protection, which enables it to be used in high-speed applications without adding additional circuitry.
The architecture of MAX3081ESA+T is based on a double-clocked design that allows data transmission in both directions. It uses a high-speed clock generator to generate a data transfer clock and a voltage comparator to detect the received data. The received data is isolated from the transmitted data and the data transfer is controlled by an external or internal microcontroller or logic. The data rate of the MAX3081ESA+T can be adjusted either by software or by changing the frequency of the internally supplied clock.
The main application field of MAX3081ESA+T is data transmission between two devices, such as between a microcontroller and an LCD, or a memory card and a module. It is mainly used for the communication between PDAs, barcode scanners, PLCs, and various other industrial instruments. The device is also well suited for driving high-speed video signals for a range of video-related applications, as well as for driving a wide variety of bus-based communication protocols. It is also used in broadband communication systems, such as terrestrial trunked radio (TETRA) and wireless mesh networks.
The MAX3081ESA+T is an excellent choice for applications requiring reliable and low-power data transmission. The chip features excellent signal integrity, flexible power management, and efficient data transmission with minimal current consumption. The device also offers excellent temperature performance and has a wide range of operating temperature (up to 70°C).
The working principle of MAX3081ESA+T is based on double-clocked data transmission. The chip consists of a clock generator, a voltage comparator, and a digital isolator. The clock generator generates a data transfer clock which is used to modulate the data transmission. The voltage comparator detects the received data and transfers it to the digital isolator, which separates the received data from the transmitted data. The data rate of the MAX3081ESA+T is adjustable either by software or by changing the frequency of the clock.
In conclusion, MAX3081ESA+T is a single-chip transceiver designed for use in fast data communication applications. It supports a range of data transfer speeds up to 10 Gbps and provides user-selectable output levels ranging from 0.4V to 5V. The main application field of the MAX3081ESA+T is data transmission between two devices, such as a microcontroller and an LCD, or a memory card and a module. The working principle of the chip is based on double-clocked data transmission, with data transmission being modulated by a clock generator and the data being detected by a voltage comparator. The chip also offers excellent signal integrity, flexible power management, and efficient data transmission with minimum current consumption.
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