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With over 20 years of experience in the development, design, manufacturing and support of SiC devices and power solutions, we can help you adopt SiC with ease, speed and confidence. Our mSiC™ products provide the lowest system cost, fastest time to market and lowest risk. Our solutions include the industry’s broadest and most flexible portfolio of SiC diodes, MOSFETs and gate drivers.
Our SiC MOSFETs feature best-in-class avalanche ruggedness, short circuit capability and oxide lifetime.
Our SiC Schottky Barrier Diodes (SBDs) offer the widest range of solutions in the market.
SiC bare die MOSFETs and SBDs are excellent options for advanced power circuits and provide significantly higher power density and efficiency.
Our SiC power modules are available in low-profile, low-stray inductance and baseless packaging.
Our SiC gate drivers incorporate patented Augmented Switching™ technology and robust short-circuit protection. These digital gate drivers are fully software configurable.
We offer a variety of time-saving reference designs, evaluation kits, models, simulation tools and application notes to accelerate your SiC-based design.
Wide-bandgap SiC semiconductors are used to control and switch high-power electrical devices. They offer several advantages over traditional silicon devices, including higher operating temperatures, higher breakdown voltage, faster switching speeds, lower on-resistance and improved ruggedness. SiC devices are an innovative option to improve system efficiency, shrink a design’s form factor and endure higher operating temperatures in industrial, transportation, automotive, medical, aerospace, aviation, defense and communication products.
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With over two decades of experience in SiC design and development, we have one of the industry’s broadest and most flexible portfolios of SiC diodes, MOSFETs and gate drivers in bare die, discrete and power module forms.
SiC provides an innovative option for power electronic designers who are looking for improved system efficiency, smaller form factors, higher operating temperature and lower system costs for their products.
Learn how SiC semiconductors improve system efficiency, increase high power density, minimize cooling requirements and reduce system size, weight and cost.
SiC semiconductors are now available for even higher voltage applications, enabling the following benefits in higher-voltage applications: improved system efficiency, smaller form factors, higher temperature operation and reduced complexity in designs.
Three times more thermally conductive than silicon, SiC enables higher voltages while exhibiting extremely low switching losses for improved system efficiency, higher power density, a smaller footprint and higher operating temperatures to reducing system size, weight and cost in high-voltage power applications.
Are you considering a transition to SiC or do you want more out of your SiC-based design that is already in production?
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