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Prospects of SPIN Gyroscopes Based on Nitrogen-Vacancy Centers in Diamond

机译:基于钻石中空位中心的SPIN陀螺仪的前景

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This project aims to develop solid-state gyroscopes based on ensembles of negatively charged nitrogen-vacancy (NV) centers in diamond [1], [2]. The NV center is a defect formed in diamond by one substitutional nitrogen atom and an adjacent vacancy. The NV- center features a ground state with electronic spin S=1, which can be initialized, manipulated, and detected via convenient optical, microwave and radiofrequency transitions (Fig. 1). Nuclear spins are appealing in the context of gyroscopes because they have much smaller gyromagnetic ratios than that of the electron (by a factor of about 1000), reducing the requirements on static magnetic-field stability and homogeneity. The lifetime of nuclear spin-polarization is much longer than for electron spins. Recent work [3] has shown that it is possible to achieve high, ~ 98%, polarization of 14N or 15N spins in diamond using excited-state level-anticrossing induced by hyperfine coupling of the nitrogen nucleus in the NV center with the electrons of the defect.
机译:该项目旨在基于钻石中带负电荷的氮空位(NV)中心的集合开发固态陀螺仪[1],[2]。 NV中心是由一个取代的氮原子和相邻的空位在金刚石中形成的缺陷。 NV中心的基态为电子自旋S = 1,可以通过方便的光学,微波和射频跃迁对其进行初始化,操纵和检测(图1)。核自旋在陀螺仪中很有吸引力,因为它们的回旋磁比比电子小得多(约1000倍),从而降低了对静态磁场稳定性和均匀性的要求。核自旋极化的寿命比电子自旋的寿命长得多。最近的工作[3]表明,可以实现〜98%的高极化。 14 N或 15 N通过利用NV中心的氮核与缺陷电子的超精细耦合诱导的激发态能级反交叉来使金刚石中的N自旋。

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