Introduction to SiC Technology

Silicon Carbide (SiC) MOSFETs offer superior performance compared to silicon IGBTs including higher switching speeds, lower losses, and higher temperature operation. This guide covers the key design considerations for using Starpower SiC MOSFET modules.

Gate Drive Requirements

SiC MOSFETs require specific gate drive conditions for optimal performance. Recommended gate voltage is +18V for turn-on and -3V to -5V for turn-off. The negative turn-off voltage is critical for immunity against high dv/dt transients. Gate resistance should be 5-10Ω for fast switching while controlling EMI.

PCB Layout Guidelines

Proper PCB layout is essential for SiC MOSFET performance. Minimize gate loop inductance by using short, wide traces and placing the gate driver close to the module. Use Kelvin source connection to eliminate source inductance effects. Place decoupling capacitors close to the module terminals.

Thermal Management

SiC MOSFETs can operate at higher junction temperatures (up to 175°C) than silicon devices, but proper thermal management is still critical. Calculate losses based on RDS(on) at operating temperature and switching frequency. Design cooling system to maintain acceptable junction temperature under worst-case conditions.

Protection Considerations

SiC MOSFETs have limited short-circuit withstand time (2-5μs) compared to IGBTs. Implement fast overcurrent protection with response time <2μs. Use desaturation detection or shunt-based current sensing. Implement soft turn-off to prevent overvoltage spikes during fault conditions.

EMI Management

The high switching speed of SiC MOSFETs (dv/dt >50V/ns) can generate significant EMI. Implement proper filtering, shielding, and layout techniques to meet EMI requirements. Common mode filters and snubber circuits may be necessary depending on application requirements.