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Vibrational modes of negatively charged silicon-vacancy centers in diamond from ab initio calculations

机译:来自AB Initio计算的金刚石带负电荷的硅空位中心的振动模式

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摘要

Silicon-vacancy (SiV) center in diamond is a photoluminescence (PL) center with a characteristic zero-phonon line energy at 1.681 eV that acts as a solid-state single-photon source and, potentially, as a quantum bit. The majority of the luminescence intensity appears in the zero-phonon line; nevertheless, about 30% of the intensity manifests in the phonon sideband. Since phonons play an essential role in the operation of this system, it is of importance to understand the vibrational properties of the SiV center in detail. To this end, we carry out density functional theory calculations of dilute SiV centers by embedding the defect in supercells of a size of a few thousand atoms. We find that there exist two well-pronounced quasilocal vibrational modes (resonances) with A(2u) and E-u symmetries, corresponding to the vibration of the Si atom along and perpendicular to the defect symmetry axis, respectively. Isotopic shifts of these modes explain the isotopic shifts of prominent vibronic features in the experimental SiV PL spectrum. Moreover, calculations show that the vibrational frequency of the A(2u) mode increases by about 30% in the excited state with respect to the ground state, while the frequency of the E-u mode increases by about 5%. These changes explain experimentally observed isotopic shifts of the zero-phonon-line energy. We also emphasize possible dangers of extracting isotopic shifts of vibrational resonances from finite-size supercell calculations, and instead propose a method to do this correctly.
机译:金刚石中的硅空位(SIV)中心是光致发光(PL)中心,其特征零位线能量为1.681eV,其充当固态单光子源,并且可能是量子位。大部分发光强度出现在零位线;尽管如此,大约30%的强度体现在声子边带中。由于声子在该系统的操作中发挥着重要作用,因此详细了解SIV中心的振动特性是重要的。为此,我们通过将缺陷嵌入尺寸为几千个原子的超级细胞中的缺陷来执行稀释SIV中心的密度泛函数学计算。我们发现,存在两个公明显quasilocal振动模式(共振)与A(2U)和E-U对称性,分别对应于沿Si原子的振动,在垂直于缺陷对称轴。这些模式的同位素变化解释了实验性SIV PL光谱中突出的振动特征的同位素变化。此外,计算表明,A(2U)模式的振动频率相对于地状态在激发状态下增加了大约30%,而E-U模式的频率增加约5%。这些变化解释了实验观察到零位能量的同位素变化。我们还强调从有限尺寸的超级单元计算提取振动共振的同位素变化的可能危险,而是提出一种正确执行方法。

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  • 来源
    《Physical review, B 》 |2018年第3期| 共9页
  • 作者单位

    Hungarian Acad Sci Wigner Res Ctr Phys Inst Solid State Phys &

    Opt POB 49 H-1525 Budapest Hungary;

    Hungarian Acad Sci Wigner Res Ctr Phys Inst Solid State Phys &

    Opt POB 49 H-1525 Budapest Hungary;

    Ctr Phys Sci &

    Technol FTMC LT-10257 Vilnius Lithuania;

    Hungarian Acad Sci Wigner Res Ctr Phys Inst Solid State Phys &

    Opt POB 49 H-1525 Budapest Hungary;

    Ctr Phys Sci &

    Technol FTMC LT-10257 Vilnius Lithuania;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 固体物理学 ;
  • 关键词

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