Bistable Optical Semiconductor Switching Based on C-Doped GaN
Soroush Ghandiparsi, Qinghui Shao, Caitlin A. Chapin, Laura Leos, Joseph D. Schneider, Samuel M. Wagner, Steven F. Chapman, Clint D. Frye 等 11 位
Lawrence Livermore National Laboratory
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摘要与影响
Highly resistive gallium nitride (GaN) is an essential material for power optoelectronic applications. While carbon doping is widely used to achieve semi-insulating properties in GaN, the persistent photoconductivity (PPC) arising from deep-level defect traps remains a major obstacle for high-speed power switching. This study demonstrates a novel approach: leveraging the ultrahigh photoresponsivity of GaN:C (up to 2.1 A$\cdot $cm/W$\cdot $kV, surpassing alternatives such as GaN:Fe) and employing defect-selective optical control to effectively quench the PPC. By synchronizing a short infrared (1064 nm) quenching pulse with UV (385 nm) excitation in an epitaxially grown GaN:C layer on a heavily doped n-type GaN substrate, we achieve a dramatic reduction in photocurrent fall time by approximately$293\times $(from 470 to 1.6$\mu $s), increasing modulation bandwidth from 745 Hz to nearly 218 kHz. This advancement not only establishes a new pathway for controlling PPC in GaN:C but also enables the practical integration of GaN:C in fast power switching devices. Enhanced modulation bandwidth, along with GaN:C excellent photoresponsivity, makes it a promising candidate for optically controlled high-voltage, high-power electronic systems, such as photoconductive semiconductor switches (PCSSs) used in pulsed-power drivers, high-power microwave (HPM) sources, and high-voltage gate drivers for wide bandgap (WBG) power electronics.
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物理GaN-based semiconductor devices and materials
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