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First-principles calculations of optical transitions at native defects and impurities in ZnO

机译:ZnO中天然缺陷和杂质处的光学跃迁的第一性原理计算

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Optical spectroscopy is a powerful approach for detecting defects and impurities in ZnO, an important electronic material. However, knowledge of how common optical signals are linked with defects and impurities is still limited. The Cu-related green luminescence is among the best understood luminescence signals, but theoretical descriptions of Cu-related optical processes have not agreed with experiment. Regarding native defects, assigning observed lines to specific defects has proven very difficult. Using first-principles calculations, we calculate the properties of native defects and impurities in ZnO and their associated optical signals. Oxygen vacancies are predicted to give luminescence peaks lower than 1 eV; while related zinc dangling bonds can lead to luminescence near 2.4 eV. Zinc vacancies lead to luminescence peaks below 2 eV, as do the related oxygen dangling bonds. However, when complexed with hydrogen impurities, zinc vacancies can cause higher-energy transitions, up to 2.3 eV. We also find that the Cu-related green luminescence is related to a (+/0) deep donor transition level.
机译:光谱学是检测重要电子材料ZnO中的缺陷和杂质的有效方法。然而,关于普通光信号如何与缺陷和杂质联系在一起的知识仍然有限。铜相关的绿色发光是最能被理解的发光信号之一,但是铜相关的光学过程的理论描述与实验并不一致。关于本机缺陷,事实证明很难将观察到的线分配给特定缺陷。使用第一性原理计算,我们计算了ZnO中的天然缺陷和杂质及其相关光信号的特性。氧空位预计会产生低于1 eV的发光峰。而相关的锌悬空键可导致2.4 eV附近的发光。锌空位导致发光峰低于2 eV,相关的氧悬挂键也是如此。但是,当与氢杂质络合时,锌空位会引起更高的能量跃迁,最高可达2.3 eV。我们还发现,与铜有关的绿色发光与(+ / 0)深施主转变水平有关。

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