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首页> 外文期刊>Physical review. B, Condensed Matter And Materals Physics >Clustering of hydrogen, phosphorus, and vacancies in diamond: A density functional theory analysis
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Clustering of hydrogen, phosphorus, and vacancies in diamond: A density functional theory analysis

机译:钻石中氢,磷和空位的聚集:密度泛函理论分析

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摘要

Phosphorus-doped n-type diamond is currently one of the most promising wide-band-gap materials for next-generation high-power electronics and optoelectronics. Artificial diamond growth methods such as chemical vapor deposition involve hydrogen-containing precursors; therefore, the hydrogen atoms can be simultaneously introduced into the diamond lattice as a contamination and form complexes with other defects. In this work, we used the spin-polarized, hybrid density functional theory method to investigate the electronic structure, stability, and magnetic and optical properties of phosphorus, vacancy, and hydrogen clusters in diamond. Our results indicate a thermodynamic driving force for the formation of previously unidentified phosphorus-vacancy-hydrogen complexes that can be electrically, magnetically, or optically active centers. We found an unusual extremely large hyperfine coupling with the ~(31)P nuclei (A > 2 GHz) for some of the investigated defects that requires further experimental verification. Finally, we demonstrate that the PV_2H~0 complex has two metastable triplets between the ground- and excited-state singlets, and it may exhibit a highly selective spin decay channel to a ground state, which makes the defect a promising candidate for realizing long-living solid-state quantum memory. These results provide deep insight into the donor compensation effect associated with vacancy-related clusters, and they may be useful in future identification of P-related defects suitable for quantum information processing applications.
机译:磷掺杂的n型金刚石是目前用于下一代高功率电子和光电子学最有希望的宽带隙材料之一。诸如化学气相沉积之类的人造金刚石生长方法涉及含氢前驱物。因此,氢原子可以同时作为污染物引入钻石晶格,并与其他缺陷形成络合物。在这项工作中,我们使用自旋极化混合密度泛函理论方法研究了金刚石中磷,空位和氢簇的电子结构,稳定性以及磁和光学性质。我们的结果表明形成了以前未知的磷-空位-氢络合物的热力学驱动力,该络合物可以是电,磁或光学活性中心。对于某些需要进一步实验验证的缺陷,我们发现与〜(31)P核(A> 2 GHz)的异常超大超精细耦合。最后,我们证明了PV_2H〜0配合物在基态和激发态单重态之间具有两个亚稳态三重态,并且它可能表现出对基态的高度选择性自旋衰减通道,这使得该缺陷成为实现长链跃迁的有希望的候选者。活的固态量子存储器。这些结果为与空位相关簇相关的供体补偿效应提供了深刻的洞察力,并且它们可能在将来识别适合于量子信息处理应用的P相关缺陷中有用。

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  • 来源
    《Physical review. B, Condensed Matter And Materals Physics》 |2018年第7期|075208.1-075208.13|共13页
  • 作者单位

    Materials Design Division, Faculty of Materials Science and Engineering, Warsaw University of Technology, Woloska 141, 02-507 Warsaw, Poland;

    Materials Design Division, Faculty of Materials Science and Engineering, Warsaw University of Technology, Woloska 141, 02-507 Warsaw, Poland;

    Materials Design Division, Faculty of Materials Science and Engineering, Warsaw University of Technology, Woloska 141, 02-507 Warsaw, Poland;

    Materials Design Division, Faculty of Materials Science and Engineering, Warsaw University of Technology, Woloska 141, 02-507 Warsaw, Poland;

    Materials Design Division, Faculty of Materials Science and Engineering, Warsaw University of Technology, Woloska 141, 02-507 Warsaw, Poland;

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