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MBR20100CTG
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MBR20100CTG Description
MBR20100CTG Description
The MBR20100CTG from onsemi is a high-performance Schottky diode array designed for power rectification applications. This obsolete through-hole component belongs to the SWITCHMODE™ series, featuring a 1 Pair Common Cathode configuration with a 100V DC reverse voltage (Vr) rating and 10A average rectified current (Io) per diode. Its Schottky technology ensures fast recovery (<500ns) and low forward voltage drop (850mV max @ 10A), making it efficient for high-current switching. Packaged in a TO-220 tube, it meets industrial standards with REACH Unaffected compliance and MSL 1 (Unlimited) moisture sensitivity.
MBR20100CTG Features
- Low Power Loss: Schottky design minimizes forward voltage drop (Vf), reducing heat dissipation.
- Fast Recovery: Sub-500ns recovery time enhances efficiency in high-frequency circuits.
- High Current Handling: 10A per diode rating suits demanding power applications.
- Robust Construction: TO-220 package ensures thermal and mechanical reliability.
- Low Reverse Leakage: 100µA @ 100V leakage current improves energy efficiency.
- Common Cathode Configuration: Simplifies circuit design in bridge or synchronous rectifier setups.
MBR20100CTG Applications
Ideal for:
- Switch-Mode Power Supplies (SMPS): Leverages fast recovery for reduced switching losses.
- DC-DC Converters: Low Vf maximizes efficiency in step-up/down circuits.
- Motor Drive Circuits: Handles high surge currents in industrial inverters.
- Solar Power Systems: Efficient energy harvesting in MPPT controllers.
- Automotive Electronics: Reliable performance in alternator rectifiers and battery charging.
Conclusion of MBR20100CTG
The MBR20100CTG stands out for its high-current capability, fast switching, and low conduction losses, making it a preferred choice for power electronics requiring efficiency and durability. While obsolete, its TO-220 package and Schottky advantages ensure compatibility with legacy designs. Engineers should consider this diode array for applications demanding minimal thermal stress and high-frequency operation, though newer alternatives may offer updated features.



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