Gali Ádám
Wigner Research Centre for Physics, PO. Box 49, Budapest H-1525, Hungary.
Department of Atomic Physics, Institute of Physics, Budapest University of Technology and Economics, Műegyetem rakpart 3., Budapest H-1111, Hungary.
Nanophotonics. 2023 Feb 1;12(3):359-397. doi: 10.1515/nanoph-2022-0723. eCollection 2023 Feb.
Solid-state defects acting as single photon sources and quantum bits are leading contenders in quantum technologies. Despite great efforts, not all the properties and behaviours of the presently known solid-state defect quantum bits are understood. Furthermore, various quantum technologies require novel solutions, thus new solid-state defect quantum bits should be explored to this end. These issues call to develop methods which accurately yield the key parameters of solid-state defect quantum bits and vastly accelerate the identification of novel ones for a target quantum technology application. In this review, we describe recent developments in the field including the calculation of excited states with quantum mechanical forces, treatment of spatially extended wavefunctions in supercell models, methods for temperature-dependent Herzberg-Teller fluorescence spectrum and photo-ionisation thresholds, accurate calculation of magneto-optical parameters of defects consisting of heavy atoms, as well as spin-phonon interaction responsible for temperature dependence of the longitudonal spin relaxation time and magneto-optical parameters, and finally the calculation of spin dephasing and spin-echo times. We highlight breakthroughs including the description of effective-mass like excited states of deep defects and understanding the leading microscopic effect in the spin-relaxation of isolated nitrogen-vacancy centre in diamond.
作为单光子源和量子比特的固态缺陷是量子技术中的主要竞争者。尽管付出了巨大努力,但目前已知的固态缺陷量子比特的所有性质和行为尚未完全被理解。此外,各种量子技术需要新颖的解决方案,因此为此应探索新的固态缺陷量子比特。这些问题促使人们开发能够准确得出固态缺陷量子比特关键参数的方法,并极大地加速针对目标量子技术应用的新型量子比特的识别。在这篇综述中,我们描述了该领域的最新进展,包括用量子力学力计算激发态、在超胞模型中处理空间扩展波函数、温度相关的赫兹伯格 - 泰勒荧光光谱和光电离阈值的方法、由重原子组成的缺陷的磁光参数的精确计算,以及负责纵向自旋弛豫时间和磁光参数温度依赖性的自旋 - 声子相互作用,最后是自旋退相和自旋回波时间的计算。我们强调了一些突破,包括对深缺陷类有效质量激发态的描述以及对金刚石中孤立氮空位中心自旋弛豫中主要微观效应 的理解。