The SC28L92A1BS,551 is a high-performance integrated circuit designed by NXP Semiconductors, catering to the need for efficient serial communication in a variety of applications. This Dual Universal Asynchronous Receiver/Transmitter (DUART) is an essential component for systems requiring serial connectivity, providing two independent full-duplex channels for data transmission.
Key Features:
- Dual Channel: The device features two UART channels that can operate independently, allowing simultaneous data processing and communication on both channels.
- Flexible Baud Rate: It supports a wide range of baud rates, ensuring compatibility with various communication standards and facilitating easy integration into different systems.
- Programmable Parameters: Users can program several operational parameters such as character length, parity, and stop bits to match specific communication requirements.
- Interrupt Capability: The SC28L92A1BS,551 comes with an interrupt-driven capability, which enhances its performance by allowing efficient data handling and prioritization.
- FIFO Buffers: Equipped with FIFO buffers, the DUART can manage data streams effectively, reducing the risk of data loss during high-speed transfers.
- Low Power Consumption: Designed with power efficiency in mind, this component is suitable for applications where power conservation is crucial.
Applications:
The versatility of the SC28L92A1BS,551 makes it an ideal choice for a wide range of applications, including but not limited to:
- Industrial control systems
- Networking equipment
- Point of Sale (POS) terminals
- Data acquisition systems
- Telecommunication infrastructure
Product Specifications:
| Parameter |
Value |
| Manufacturer |
NXP Semiconductors |
| Part Number |
SC28L92A1BS,551 |
| Package |
SVQFN56 |
| Operating Temperature |
-40°C to +85°C |
Overall, the SC28L92A1BS,551 from NXP is a robust and reliable solution for designers looking to incorporate serial communication capabilities into their systems with minimal power consumption and maximum efficiency.