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首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >Zinc Oxide as a Model Transparent Conducting Oxide: A Theoretical and Experimental Study of the Impact of Hydroxylation, Vacancies, Interstitials, and Extrinsic Doping on the Electronic Properties of the Polar ZnO (0002) Surface
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Zinc Oxide as a Model Transparent Conducting Oxide: A Theoretical and Experimental Study of the Impact of Hydroxylation, Vacancies, Interstitials, and Extrinsic Doping on the Electronic Properties of the Polar ZnO (0002) Surface

机译:氧化锌作为模型的透明导电氧化物:羟基化,空位,间隙和非本征掺杂对极性ZnO(0002)表面电子性能的影响的理论和实验研究

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摘要

The technology-relevant zinc-terminated zinc oxide (0002) polar surface has been studied at the density-functional theory level using both Perdew-Burke-Ernzerhof (PBE) and hybrid Heyd-Scuseria-Ernzerhof (HSE06) functionals. We have considered a number of surface conditions to better understand the impact of surface hydroxylation and intrinsic and extrinsic surface defects, including zinc vacancies, oxygen vacancies, zinc interstitials, and aluminum dopants on the surface electronic properties. Our calculations point to large variations in surface work function and energy band gap as a function of the surface model; these variations can be attributed to changes in surface charge carrier density and to additional surface states induced by the defects. The calculated shifts in O(ls) core-level binding energy of the surface oxygens in different bonding configurations are in good agreement with experimental X-ray photoelectron spectroscopy data and point to the presence of two distinct OH-species on the ZnO surface. Our results also show that the electron-compensation centers induced by zinc vacancies can be stabilized by intrinsic and/or extrinsic n-type doping near the surface; such n-type doping can lead to better performance of organic opto-electronic devices in which zinc oxide is used as an electron-selective interlayer.
机译:已使用Perdew-Burke-Ernzerhof(PBE)和Heyd-Scuseria-Ernzerhof(HSE06)杂化功能在密度泛函理论水平上研究了与技术相关的锌末端氧化锌(0002)极性表面。我们考虑了许多表面条件,以更好地理解表面羟基化以及内在和外在表面缺陷的影响,包括锌空位,氧空位,锌间隙和铝掺杂剂对表面电子性能的影响。我们的计算结果表明,表面功函数和能带隙随表面模型的变化很大。这些变化可归因于表面电荷载流子密度的变化以及由缺陷引起的附加表面状态。在不同键合构型下,表面氧的O(ls)核心能级键合能的计算位移与实验X射线光电子能谱数据非常吻合,并指出ZnO表面上存在两种不同的OH物种。我们的结果还表明,锌空位引起的电子补偿中心可以通过表面附近的本征和/或非本征n型掺杂来稳定。这种n型掺杂可以提高有机光电器件的性能,其中氧化锌用作电子选择性中间层。

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