Intra- and Inter-Conduction Band Optical Absorption Processes in $\beta$-Ga$_2$O$_3$
Abstract
-GaO is an ultra-wide bandgap semiconductor and is thus expected to be optically transparent to light of sub-bandgap wavelengths well into the ultraviolet. Contrary to this expectation, it is found here that free electrons in n-doped -GaO absorb light from the IR to the UV wavelength range via intra- and inter-conduction band optical transitions. Intra-conduction band absorption occurs via an indirect optical phonon mediated process with a dependence in the visible to near-IR wavelength range. This frequency dependence markedly differs from the dependence predicted by the Drude model of free-carrier absorption. The inter-conduction band absorption between the lowest conduction band and a higher conduction band occurs via a direct optical process at nm (3.55 eV). Steady state and ultrafast optical spectroscopy measurements unambiguously identify both these absorption processes and enable quantitative measurements of the inter-conduction band energy, and the frequency dependence of absorption. Whereas the intra-conduction band absorption does not depend on light polarization, inter-conduction band absorption is found to be strongly polarization dependent. The experimental observations, in excellent agreement with recent theoretical predictions for -GaO, provide important limits of sub-bandgap transparency for optoelectronics in the deep-UV to visible wavelength range, and are also of importance for high electric field transport effects in this emerging semiconductor.
Keywords
Cite
@article{arxiv.2006.14850,
title = {Intra- and Inter-Conduction Band Optical Absorption Processes in $\beta$-Ga$_2$O$_3$},
author = {Arjan Singh and Okan Koksal and Nicholas Tanen and Jonathan McCandless and Debdeep Jena and Huili and Xing and Hartwin Peelaers and Farhan Rana},
journal= {arXiv preprint arXiv:2006.14850},
year = {2020}
}
Comments
5 pages, 6 figures