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CPWR-AN08 Datasheet(PDF) 3 Page - Cree, Inc |
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CPWR-AN08 Datasheet(HTML) 3 Page - Cree, Inc |
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3 / 6 page ![]() 3 Application Considerations for SiC MOSFETs January 2011 CPWR-AN08, REV - Application Considerations for SiC MOSFETs - January 2011 This document is provided for informational purposes only and is not a warranty or a specification. For product specifications, please see the data sheets available at www.cree.com/power. For warranty information, please contact Cree Sales at PowerSales@cree.com. TJ = 25 °C Figure 2: Forward conduction characteristics One of the key advantages to SiC is the high temperature capability afforded by the wide bandgap. This is clearly reflected in the leakage current comparison at elevated temperature shown in Figure 3. The CMF20120D has about 20x lower leakage current at 150 ° current increases dramatically, to the point where the device fails due to excess power dissipation. The CMF20120D leakage current is still acceptable devices. TJ = 150 ˚C Figure 3: High temperature leakage current comparison As previously mentioned, the recommended gate drive voltage for the 5V negative bias. However, the amount of gate charge required to switch the device is low. The 1E-7 1E-6 1E-5 1E-4 1E-3 1E-2 1E-1 0 200 400 600 VDS, VCE (V) 4 TJ = 150 °C : Forward conduction characteristics comparison (VGS = 20V, VGE = 15V) One of the key advantages to SiC is the high temperature capability afforded by the wide bandgap. This is clearly reflected in the leakage current comparison at elevated temperature shown in Figure 3. The has about 20x lower leakage current at 150 °C. At 200 °C, the Si comparison parts leakage current increases dramatically, to the point where the device fails due to excess power dissipation. The leakage current is still acceptable at this temperature and is over 100x lower than the Si TJ = 200 ˚C Figure 3: High temperature leakage current comparison As previously mentioned, the recommended gate drive voltage for the CMF20120D is + . However, the amount of gate charge required to switch the device is low. The 800 1000 1200 (V) TFS IGBT = 15V) One of the key advantages to SiC is the high temperature capability afforded by the wide bandgap. This is clearly reflected in the leakage current comparison at elevated temperature shown in Figure 3. The °C, the Si comparison parts leakage current increases dramatically, to the point where the device fails due to excess power dissipation. The over 100x lower than the Si +20V and -2V to - . However, the amount of gate charge required to switch the device is low. The |
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