Avalanche Injection and Lock-On in Photoconductive Semiconductor Switches

H. Hjalmarson, K. Kambour, C. Myles, R. Joshi
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Abstract

Optically-triggered, high-power photoconductive semiconductor switches (PCSS's) composed of semi-insulating GaAs carry current in high carrier-density filaments after the optical trigger is discontinued. This highly conductive mode of operation is called lock-on. The properties of these filaments can be explained by collective impact ionization theory in which energy redistribution by carrier-carrier scattering within the filament enhances the impact ionization rate. This allows these filaments to be sustained by fields which are relatively low compared to the bulk breakdown fields. For GaAs, the sustaining lock-on field is approximately 4.5 kV/cm. For this talk, a hydrodynamic implementation of the collective impact ionization theory is used to compute the temporal evolution of these filaments following optical triggering. These continuum calculations are based on previous calculations in which the steady-state properties of filaments are computed using a Monte Carlo method to solve the Boltzmann equation. The same method will be used to calculated avalanche injection effects in a GaAs avalanche photodiode. The two modes of operation, lock-on and avalanche, will be compared and contrasted. In addition, the effects of carrier recombination at defects will also be discussed.
光导半导体开关中的雪崩注入和锁定
光触发的、由半绝缘GaAs组成的高功率光导半导体开关(PCSS)在光触发停止后在高载流子密度灯丝中携带电流。这种高导电性的操作模式被称为锁定。这些长丝的性质可以用集体碰撞电离理论来解释,其中长丝内载流子-载流子散射的能量再分配提高了碰撞电离率。这使得这些细丝可以通过相对较低的场来维持,而与大量击穿场相比。对于砷化镓,持续锁定场约为4.5 kV/cm。在这次演讲中,集体碰撞电离理论的流体动力学实现被用来计算这些细丝在光触发后的时间演变。这些连续介质计算是基于先前的计算,其中长丝的稳态特性是使用蒙特卡罗方法来求解玻尔兹曼方程计算的。同样的方法将用于计算砷化镓雪崩光电二极管中的雪崩注入效应。两种工作模式,锁定和雪崩,将进行比较和对比。此外,还讨论了缺陷处载流子复合的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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