论文标题

钻石中带负电荷的氮相处中心的多配置研究

A multiconfigurational study of the negatively charged nitrogen-vacancy center in diamond

论文作者

Bhandari, Churna, Wysocki, Aleksander L., Economou, Sophia E., Dev, Pratibha, Park, Kyungwha

论文摘要

宽带隙半导体的深缺陷已成为实现量子感应和信息应用的领先量子候选者。由于缺陷态的空间定位,这些深缺陷可以被视为固态基质中的人造原子/分子。在这里,我们表明,与单粒子处理不同,传统上保留用于原子/分子的多配制量子化学方法,可以准确地描述这些缺陷中心的电子状态的多体特征,并正确预测单块处理无法获得的特性。我们选择了钻石中心的负电荷氮态(NV $^ - $)中心作为原型缺陷,因为其对量子信息应用的重要性,并且由于其特性是众所周知的,因此它是理想的基准系统。 By properly accounting for electron correlations and including spin-orbit coupling and dipolar spin-spin coupling in the quantum chemistry calculations, for the NV$^-$ center in diamond clusters, we are able to: (i) show the correct splitting of the ground (first-excited) triplet state into two levels (four levels), (ii) calculate zero-field splitting values of the ground and excited triplet states, in good agreement with实验和(iii)计算地面和退出的旋转三链和旋转单曲态之间的能量差异,以及它们的订购,这也发现与最近的实验数据非常吻合。我们开发的数值过程是一般的,它可以筛选其他颜色中心的属性,其属性尚不清楚,但有望实现应用程序。

Deep defects in wide band gap semiconductors have emerged as leading qubit candidates for realizing quantum sensing and information applications. Due to the spatial localization of the defect states, these deep defects can be considered as artificial atoms/molecules in a solid state matrix. Here we show that unlike single-particle treatments, the multiconfigurational quantum chemistry methods, traditionally reserved for atoms/molecules, accurately describe the many-body characteristics of the electronic states of these defect centers and correctly predict properties that single-particle treatments fail to obtain. We choose the negatively charged nitrogen-vacancy (NV$^-$) center in diamond as the prototype defect to study with these techniques due to its importance for quantum information applications and because its properties are well-known, which makes it an ideal benchmark system. By properly accounting for electron correlations and including spin-orbit coupling and dipolar spin-spin coupling in the quantum chemistry calculations, for the NV$^-$ center in diamond clusters, we are able to: (i) show the correct splitting of the ground (first-excited) triplet state into two levels (four levels), (ii) calculate zero-field splitting values of the ground and excited triplet states, in good agreement with experiment, and (iii) calculate the energy differences between ground and exited spin-triplet and spin-singlet states, as well as their ordering, which are also found to be in good agreement with recent experimental data. The numerical procedure we have developed is general and it can screen other color centers whose properties are not well known but promising for applications.

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