We report on the modeling of polarization-induced two-dimensional electron gas (2DEG) formation at ϵ-AlGaO3 / ϵ-Ga2O3 heterointerface and the effect of spontaneous polarization (Psp) reversal on 2DEG density in ϵ-Ga2O3 /ϵ-AlGaO3 / ϵ-Ga2O3 double heterostructures. Density-functional theory (DFT) is utilized to calculate the material properties of ϵ-Ga2O3 and ϵ-AlGaO3 alloys. Using Schrodinger-Poisson solver along with DFT calculated parameters, the 2DEG density is calculated as a function of barrier type and thickness. By optimizing the layer thicknesses of ϵ-Ga2O3/ϵ-AlGaO3/ϵ-Ga2O3 heterostructures, charge contrast ratios exceeding 1600 are obtained. This computational study indicates the high potential for ϵ-Ga2O3-based heterostructure devices for non-volatile memories and neuromorphic applications.
@article{arxiv.2004.13941,
title = {Highly tunable polarization-engineered two-dimensional electron gas in ${\epsilon}$-AlGaO3 / ${\epsilon}$-Ga2O3 heterostructures},
author = {Praneeth Ranga and Sung Beom Cho and Rohan Mishra and Sriram Krishnamoorthy},
journal= {arXiv preprint arXiv:2004.13941},
year = {2020}
}