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Anisotropic excitonic photocurrent in β−Ga2O3

Darpan Verma1, Md Mohsinur Rahman Adnan2, Sushovan Dhara2, Chris Sturm3, Siddharth Rajan2, and Roberto C. Myers1,2,*

  • 1Department of Materials Science Engineering, The Ohio State University, Columbus, Ohio 43210, USA
  • 2Department of Electrical and Computer Engineering, The Ohio State University, Columbus, Ohio 43210, USA
  • 3Felix-Bloch-Institut für Festkörperphysik, Universität Leipzig, Linnéstrasse 5, 04103 Leipzig, Germany

  • *myers.1079@osu.edu

Phys. Rev. Materials 7, L061601 – Published 23 June, 2023

DOI: https://doi.org/10.1103/PhysRevMaterials.7.L061601

Abstract

Polarization-dependent photocurrent spectra are measured on a (001) β−Ga2O3 Schottky photodetector, where the linear polarization of light is rotated within the ab plane. Three spectral peaks at 4.92, 5.15, and 5.44 eV are observed that vary in intensity with the optical polarization direction. The peak transition energies are consistent with excitons previously reported in β−Ga2O3 due to interband transitions modified by the valence-band p-orbital anisotropy and the electron-hole Coulombic attraction. The measured polarization dependence of the photocurrent matches our predictions based on electromagnetic simulations of anisotropic absorption using the complex dielectric function tensor extracted from previous ellipsometry studies. These results illustrate the dominance of excitonic absorption and photocurrent in β−Ga2O3 both below and above the band gap, demonstrate a combined theoretical/experimental understanding of anisotropic photocarrier generation, and validate previous atomistic band-structure calculations in this low-symmetry ultrawide-band-gap semiconductor.

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