外延
材料科学
薄脆饼
光电子学
击穿电压
二极管
电压
电气工程
复合材料
工程类
图层(电子)
作者
Thomas Kaltsounis,Mohammed El Amrani,David Plaza Arguello,Hala El Rammouz,Vishwajeet Maurya,Matthieu Lafossas,S. Torrengo,Helge Haas,Laurent Mendizabal,Alain Gueugnot,D. Mariolle,Thomas Jalabert,Julien Buckley,Y. Cordier,Matthew Charles
标识
DOI:10.1002/pssa.202400059
摘要
Localized epitaxy of gallium nitride (GaN) on silicon (Si) wafers is an efficient way to relax elastically the tensile stress generated in the GaN layer after growth, allowing epitaxy of thick layers for the fabrication of vertical power devices operating at high voltage. In this study, a 4.7 μm‐thick GaN layer is grown by metal–organic vapor phase epitaxy on 200 mm‐diameter Si wafers for the fabrication of quasi‐vertical Schottky and p‐n diodes. The uniformity of the doping concentration in the layer is mapped spatially by scanning spreading resistance microscopy, while scanning capacitance microscopy illustrates the differently doped regions in the p‐n diode. The net doping concentration is extracted by capacitance–voltage ( C – V ) measurements and it is found to be about 3 × 10 16 cm −3 . On a 140 μm‐diameter quasi‐vertical p‐n diode, destructive breakdown occurs at 402 V, with no periphery protection on the device, demonstrating that localized epitaxy of GaN on Si has great potential for vertical high‐power devices.
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