RDS(on) measurement and wide bandgap semiconductor testing
The rapid growth of AI datacenters , electric vehicles and renewable energy ecosystems is driving an unprecedented global demand for power. Advancing toward sustainable energy practices requires maximizing efficiency across the entire lifecycle of electrical energy, from generation to conversion to consumption.
To achieve superior efficiency, modern power electronics must operate in significantly higher voltages and faster switching frequencies. This has fueled the growing adoption of wide bandgap (WBG) semiconductors, which can outperform conventional silicon (Si) semiconductors by their ability to operate under much harsher electronic environments.
Physically, a material's bandgap represents the energy required for electrons to jump from highest occupied state of the valance band to the lowest unoccupied state of the conduction band. While Si has a bandgap of approximately 1.12 eV, WBG semiconductors feature bandgaps that are two to three times greater. The two most prominent WBG technologies are silicon carbide (SiC) and gallium nitride (GaN).
In practical applications, WBG semiconductors enable smaller, lighter and more efficient power systems. Their elevated thermal limits allow devices to operate safely at higher maximum temperatures, while their superior efficiency directly reduces operational carbon emissions.
However, migrating to high-frequency, high-voltage switching introduces distinct engineering hurdles. As industry players ramp up investments in WBG semiconductors, precise hardware testing becomes a must to detect and analyze power conversion issues. Rigorous reliability testing, control loop stability and datasheet verification remain important considerations when introducing them into mass production.