Evaluation of Fe-βGa2O3 for Photoconductive Semiconductor Switching
符号
数学
算法
算术
作者
Karen M. Dowling,Bikramjit Chatterjee,Soroush Ghandiparsi,Qinghui Shao,Joel B. Varley,Joseph D. Schneider,Caitlin A. Chapin,Miranda S. Gottlieb,Laura Leos,Michael Sword,S. E. Harrison,Lars F. Voss
We present iron-doped beta gallium oxide (Fe- β Ga2O3) as a candidate for photoconductive semiconductor switches (PCSSs) with sub-bandgap light. From a commercially available Fe- β Ga2O3 wafer, we first did material characterization. This included measurements of absorption coefficient and dopant composition, carrier activation energy up to 200 °C, break down field of planar electrodes (limited from material passivation), and free carrier recombination lifetime, and thermal effects up to 203 °C on photocurrent with a 447 nm light emitting diode (LED) source. Here, we then demonstrated pulsed operation of a Fe- β Ga2O3 PCSS under different sub-bandgap wavelengths (355, 532, and 1064 nm) and sub-ns pulses. Fe- β Ga2O3 is a candidate for high temperature PCSS with 355 nm responsivity of 7×10<sup>-7</sup> A-cm/W-kV at room temperature and up to 5.5×10<sup>-4</sup> A-cm/W-kV at 200 °C. From these investigations, we discuss a simple trap model to describe the illumination process of the PCSS. Fe- β Ga2O3 has a high breakdown field and has moderate responsivity characteristics, but the dark current at high temperature leads to low photo-to-dark current ratio (PDCR). Regardless, we verify its potential as a PCSS material for harsh environment applications.