
Texas Instruments
SN65LVDS108DBT
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SN65LVDS108DBT Description
SN65LVDS108DBT Description
The SN65LVDS108DBT from Texas Instruments is a high-performance 1:8 LVDS multiplexer/buffer designed for robust signal distribution in high-speed digital systems. Housed in a compact 38-TSSOP package, this active component operates within a 3V to 3.6V supply range, delivering a maximum data rate of 400Mbps with a low propagation delay of 2.8ns. Its single-channel input to eight LVDS outputs architecture ensures minimal signal degradation, making it ideal for applications requiring precise clock or data distribution. The device complies with RoHS3 and REACH environmental standards and features a low input capacitance of 5pF, reducing loading effects on the source.
SN65LVDS108DBT Features
- High-Speed Performance: Supports 400Mbps data rates with 2.8ns delay, ensuring minimal signal skew.
- Low Power Consumption: Draws 62mA supply current, optimizing energy efficiency.
- Robust Signal Integrity: LVDS input/output for noise immunity and reduced EMI.
- Compact Design: 38-TSSOP package saves board space in dense layouts.
- Environmental Compliance: ROHS3 and REACH unaffected, suitable for eco-conscious designs.
- Low Input Capacitance: 5pF minimizes source loading, preserving signal quality.
- Wide Operating Voltage: 3V–3.6V range accommodates various system requirements.
SN65LVDS108DBT Applications
- Clock Distribution: Ideal for synchronizing multiple LVDS receivers in telecom/base stations.
- High-Speed Data Routing: Used in FPGA/ASIC interfaces for low-jitter signal replication.
- Display Systems: Ensures clean signal splitting in LCD/OLED timing controllers.
- Industrial Automation: Reliable signal buffering for PLC and motor control systems.
- Medical Imaging: Maintains signal fidelity in high-resolution ultrasound/CT scan data paths.
Conclusion of SN65LVDS108DBT
The SN65LVDS108DBT stands out for its high-speed, low-power LVDS multiplexing capabilities, offering superior signal integrity in space-constrained designs. Its low latency, robust noise immunity, and compliance with environmental standards make it a preferred choice for telecom, industrial, and medical applications. Engineers benefit from its efficient 1:8 signal distribution, ensuring reliable performance in demanding high-frequency environments.



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