
Allicdata Part #: | ISL37231DRAZ-T7-ND |
Manufacturer Part#: |
ISL37231DRAZ-T7 |
Price: | $ 0.00 |
Product Category: | Integrated Circuits (ICs) |
Manufacturer: | Intersil |
Short Description: | IC TRANSCEIVER DUAL CHANNEL QFN |
More Detail: | 2/2 Transceiver Full 69-AQFN (5x5) |
DataSheet: | ![]() |
Quantity: | 1000 |
1 +: | 0.00000 |
Series: | -- |
Packaging: | Tape & Reel (TR) |
Part Status: | Obsolete |
Type: | Transceiver |
Protocol: | -- |
Number of Drivers/Receivers: | 2/2 |
Duplex: | Full |
Data Rate: | 10.3125Gbps |
Voltage - Supply: | 1.71 V ~ 1.89 V |
Operating Temperature: | 0°C ~ 85°C |
Mounting Type: | Surface Mount |
Package / Case: | 69-VFQFN Dual Rows, Exposed Pad |
Supplier Device Package: | 69-AQFN (5x5) |
Base Part Number: | ISL37231 |
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The ISL37231DRAZ-T7 is an integrated low dropout voltage regulator (LDO) transceiver, which can provide high-speed communication and ensure maximum stability, making it an ideal choice for a wide range of industrial applications. The device is a multi-channel transceiver, meaning it provides operation on multiple channels, making it suitable for applications requiring dual or triple data connections or that require high-speed transmission. The ISL37231DRAZ-T7 is also capable of providing up to 1.5A of continuous output current, making it suitable for powering devices with high current requirements.
The ISL37231DRAZ-T7 is designed for high-speed serial communication, making it ideal for applications such as industrial and medical devices, consumer electronics, automotive telematics and data storage systems. The device features a wide operating voltage range of 3.3V to 38V, making it suitable for a wide range of applications. It is also capable of providing up to 1.5A of continuous output current, making it more suitable for applications that require a high current drive.
As an interface, the ISL37231DRAZ-T7 supports non-inverting three-state (TTL) logic levels. This means that signals are both unidirectional and bidirectional, ensuring that the device can effectively transmit and receive data. The device supports two channels, each with its own independent direction control. This makes it ideal for applications that require the simultaneous transmission of multiple data streams.
The ISL37231DRAZ-T7 also features low input and output noise immunity, making it suitable for applications where signal transmission is a priority. The device has a maximum data rate of 400 Mbps, and is able to read and write simultaneous data from both its input and output ports. This makes it suitable for applications requiring high-speed data transmission. The device also provides a low standby power consumption of less than 10 microamps.
In terms of working principle, the ISL37231DRAZ-T7 is a 3-state transceiver, meaning it can transmit and receive data on multiple channels simultaneously. It incorporates on-chip CMOS technology to achieve low levels of power consumption, as well as improved data processing. The device is also capable of providing up to 1.5A of continuous output current, making it suitable for powering devices with high current requirements. The device is also capable of providing protection from overvoltage and current-overload situations.
In conclusion, the ISL37231DRAZ-T7 transceiver is an integrated low dropout voltage regulator (LDO) transceiver, which can provide high-speed communication and ensure maximum stability. It is designed for high-speed serial communication, making it ideal for a wide range of applications such as industrial and medical devices, consumer electronics, automotive telematics and data storage systems. The device also supports two channels, each with its own independent direction control, making it suitable for applications that require the simultaneous transmission of multiple data streams. It is also capable of providing up to 1.5A of continuous output current, and features low input and output noise immunity, making it suitable for applications where signal transmission is a priority. Additionally, the device provides protection from overvoltage and current-overload situations.
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