IEEE Transactions on Electron Devices · 2018 · 45 citations · 27 references
SemiconductorsSemiconductor TechnologyElectrical EngineeringWide-bandgap SemiconductorEngineeringCrystalline DefectsApplied PhysicsGan Power DeviceNative GanThermal PerformanceGan/gan HemtsCategoryiii-v SemiconductorLow-leakage Gan Hemts
In this paper, the advantages of GaN high electron mobility transistors (HEMTs) grown on native GaN over GaN/Si or GaN/sapphire substrates are investigated and correlated with epitaxial material quality. Transmission electron microscopy plan-view and cross-sectional analyses of GaN/GaN reveal dislocation densities below 1 × 106 cm <sup xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">-2</sup> , which is at least three orders of magnitude lower than that of GaN/Si or GaN/sapphire. In the case of GaN/Si, the dislocations not only originate from the substrate/nucleation layer interface, but also the strain relief and isolation buffer stacks are main contributors to the dislocation density. GaN/GaN HEMTs show superior electrical and thermal performance and feature three orders of magnitude lower OFF-state leakage. The current collapse (also referred to as current dispersion or RON-increase) after stress bias is less than 15% compared with 50% in the case of GaN/Si. A 2% drop of the ON-state current due to selfheating in dc operation when compared with 13% and 16% for GaN/Si and GaN/sapphire, respectively. The GaN/Si thermal performance becomes comparable to that of GaN/GaN only after substrate removal. Therefore, GaN/GaN provides high ON-state current, low OFF-state leakage current, minimal current collapse, and enhanced thermal power dissipation capability at the same time, which can directly be correlated with the absence of high dislocation density.
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Davide Bisi, Matteo Meneghini, Carlo De Santi et al. · IEEE Transactions on Electron Devices · 2013 · 434 citations · Full text
Wide-bandgap Semiconductor, Electrical Engineering, Engineering +15
Julia W. P. Hsu, Michael J. Manfra, R. J. Molnar et al. · Applied Physics Letters · 2002 · 299 citations
Materials Science, Excess Reverse-bias Leakage, Electrical Engineering +12