论文标题
用Hz级精度确定的固体中的单个自旋缺陷的温度依赖性行为
Temperature-dependent behaviors of single spin defects in solids determined with Hz-level precision
论文作者
论文摘要
揭示固体中单个自旋缺陷的特性对于基于固态系统的量子应用至关重要。然而,由于与缺陷集合相比,单位缺陷测量的精度较低,研究单个缺陷的温度依赖性特性是棘手的。在这里,我们报告说,哈密顿参数的温度依赖性精确地测量了钻石中的单个带负电荷的氮态(NV $^{ - } $)中心的温度依赖性,结果与第一原则计算找到了合理的一致性。特别是,与随机分布的$^{13} $ c核自旋的超细相互作用清楚地观察到随温度变化,并且相关系数以Hz级的精度测量。依赖温度的行为归因于第一原理计算的热膨胀和晶格振动。我们的结果铺平了在纳米级作为更稳定的温度计,将核自旋铺平道路。这里开发的用于高精度测量和第一原理计算的方法可以进一步扩展到其他固态自旋缺陷。
Revealing the properties of single spin defects in solids is essential for quantum applications based on solid-state systems. However, it is intractable to investigate the temperature-dependent properties of single defects, due to the low precision for single-defect measurements in contrast to defect ensembles. Here we report that the temperature dependence of the Hamiltonian parameters for single negatively charged nitrogen-vacancy (NV$^{-}$) centers in diamond is precisely measured, and the results find a reasonable agreement with first-principles calculations. Particularly, the hyperfine interactions with randomly distributed $^{13}$C nuclear spins are clearly observed to vary with temperature, and the relevant coefficients are measured with Hz-level precision. The temperature-dependent behaviors are attributed to both thermal expansion and lattice vibrations by first-principles calculations. Our results pave the way for taking nuclear spins as more stable thermometers at nanoscale. The methods developed here for high-precision measurements and first-principles calculations can be further extended to other solid-state spin defects.