论文标题
旋转缺陷中温度依赖性过渡能的第一原理计算
First-principles Calculation of the Temperature-dependent Transition Energies in Spin Defects
论文作者
论文摘要
与颜色中心相关的旋转量子位是各种量子技术的有前途的平台。但是,要部署在健壮的量子设备中,应以高精度知道其内在特性的变化,尤其是温度。不幸的是,关于固体中电子和核自旋缺陷的温度依赖性的预测理论仍然缺乏。在这项工作中,我们开发了一种原理方法,用于零声子线,零场分裂,超精细相互作用和核四极相互作用的温度依赖性。作为测试台,我们将AB-Initio计算结果与氮呈(NV)中心的实验进行了比较。有趣的是,我们将温度依赖的主要起源确定为声子振动的二阶效应。该方法通常适用于不同的颜色中心,并提供了设计高精度量子传感器的理论工具。
Spin qubits associated with color centers are promising platforms for various quantum technologies. However, to be deployed in robust quantum devices, the variations of their intrinsic properties with the external conditions, and in particular temperature, should be known with high precision. Unfortunately, a predictive theory on the temperature dependence of the resonance frequency of electron and nuclear spin defects in solids remains lacking. In this work, we develop a first-principles method for the temperature dependence of zero phonon line, zero-field splitting, hyperfine interaction, and nuclear quadrupole interaction of color centers. As a testbed, we compare our ab-initio calculation results with experiments in the Nitrogen-Vacancy (NV) center finding good agreement. Interestingly, we identify the major origin of temperature dependence as a second-order effect of phonon vibration. The method is generally applicable to different color centers and provides a theoretical tool for designing high-precision quantum sensors.