Atomic-displacement threshold energies and defect generation in irradiated β-Ga2O3: A first-principles investigation

Author:

Tuttle Blair R.12ORCID,Karom Nathaniel J.13ORCID,O’Hara Andrew1ORCID,Schrimpf Ronald D.4ORCID,Pantelides Sokrates T.14ORCID

Affiliation:

1. Department of Physics and Astronomy, Vanderbilt University 1 , Nashville, Tennessee 37235, USA

2. Department of Physics, Penn State Behrend 2 , Erie, Pennsylvania 16563, USA

3. Department of Physics, Allegheny College 3 , Meadville, Pennsylvania 16336, USA

4. Department of Electrical and Computer Engineering, Vanderbilt University 4 , Nashville, Tennessee 37235, USA

Abstract

Gallium oxide is an emerging wide-bandgap semiconductor with promise for applications in space systems that may be exposed to energetic particles. We use molecular dynamics simulations, based on first principles density-functional methods, to determine the nature and stability of the defects generated by atoms knocked-out by particle irradiation at near threshold energies (found to be 28±1eV for Ga and 14±1eV for O). For Ga atoms, several types of low energy knock-out events result in defect complexes, but the final structures depend critically on the initial displacement direction. In contrast, a vacancy plus a peroxide linkage occurs in all types of low energy knock-out events of O atoms. Based on energy-barrier calculations, there is a low (high) probability for Ga (O) defect recombination. The electronic structure of residual, relaxed defects generated by Ga knock-outs reveals defect levels near the band edges.

Funder

Air Force Office of Scientific Research

Publisher

AIP Publishing

Subject

General Physics and Astronomy

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