The 7WB3306DTR2G is a high-performance, low-power clock buffer from ON Semiconductor, a leading provider of semiconductor-based solutions. This device is designed to distribute high-speed signals with minimal skew and is targeted at applications requiring precise clock distribution, such as advanced computing, high-speed networking, and telecommunications systems.
Key Features
- Low Skew: The 7WB3306DTR2G is engineered to provide extremely low output-to-output skew, which is critical for maintaining signal integrity and synchronization across multiple pathways.
- Multiple Outputs: This device offers multiple buffered outputs, ensuring that the input clock signal can be distributed to various destinations without degradation.
- Wide Frequency Range: It supports a broad range of operating frequencies, making it versatile for use in a variety of high-speed applications.
- Low Power Consumption: Designed with power efficiency in mind, the 7WB3306DTR2G helps to minimize power usage in systems where power budgets are critical.
- Advanced Packaging: The product is available in a compact TSSOP package, which is ideal for space-constrained applications and provides reliable performance in a small form factor.
Applications
The 7WB3306DTR2G is suitable for a wide range of applications including, but not limited to:
- High-speed computing platforms
- Servers and data centers
- Networking equipment such as routers and switches
- Telecommunication infrastructure
- Industrial control systems
Quality and Reliability
ON Semiconductor is committed to providing products that meet the highest standards of quality and reliability. The 7WB3306DTR2G clock buffer is no exception, undergoing rigorous testing and quality control measures to ensure it meets the stringent requirements of the industry sectors it serves.
Ordering Information
The 7WB3306DTR2G is available for order now. For detailed product specifications, pricing, and ordering information, please refer to the official ON Semiconductor website or contact an authorized distributor.