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Native oxide reconstructions on AlN and GaN (0001) surfaces

钝化 化学计量学 材料科学 氧化物 曲面重建 密度泛函理论 费米能级 宽禁带半导体 混合功能 曲面(拓扑) 透射电子显微镜 表面状态 化学物理 电子 凝聚态物理 光电子学 纳米技术 化学 计算化学 图层(电子) 物理 物理化学 几何学 数学 冶金 量子力学
作者
Kelsey J. Mirrielees,J. Houston Dycus,Jonathon N. Baker,Pramod Reddy,Ramón Collazo,Zlatko Sitar,James M. LeBeau,Douglas L. Irving
出处
期刊:Journal of Applied Physics [American Institute of Physics]
卷期号:129 (19) 被引量:7
标识
DOI:10.1063/5.0048820
摘要

Properties of AlN/GaN surfaces are important for realizing the tunability of devices, as the presence of surface states contributes to Fermi level pinning. This pinning can influence the performance of high electron mobility transistors and is also important for passivation of the surface when developing high-power electronic devices. It is widely understood that both AlN and GaN surfaces oxidize. Since there are many possible reconstructions for each surface, it is a challenge to identify the relevant surface reconstructions in advance of a detailed simulation. Because of this, different approaches are often employed to down select initial structures to reduce the computational load. These approaches usually rely on either electron counting rules or oxide stoichiometry, as both of these models tend to lead to structures that are energetically favorable. Here we explore models from these approaches but also explore a reconstruction of the (0001) surface directly observed using scanning transmission electron microscopy with predictive density functional theory simulations. Two compositions of the observed surface reconstruction—one which obeys oxide stoichiometry and one which is cation deficient and obeys electron counting—are compared to reconstructions from the previous work. Furthermore, surface states are directly calculated using hybrid exchange-correlation functionals that correct for the underestimation of the bandgaps in AlN and GaN and improve the predicted positions of surface states within the gap. It is found that cation deficiency in the observed reconstruction yields surface states consistent with the experiment. Based on all of these results, we provide insight into the observed properties of oxidized AlGaN surfaces.
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