基于微波脉冲辅助纵向弛豫平衡自旋质点的氮空穴电荷态动态测量

IF 4.4 Q1 OPTICS
Mingxin Li, Heng Yuan, Guodong Bian, Pengcheng Fan, Sixian Wang, Jihongbo Shen, Jianpei Geng, Jixing Zhang
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引用次数: 0

摘要

金刚石中的氮空位(NV)中心在带负电荷(NV-)时具有多功能性,但在带中性电荷时则表现平平。特别是在光抽运和黑暗间歇期间,NV 中心的电荷态是可转换的,其动态与 NV-s 的自旋极化和弛豫混合在一起,使其难以检测。本文提出了一种微波脉冲辅助的暗时间(DT)NV 中心电荷态动力学(CSD)测量方法。微波脉冲旨在操纵 NV-s 基态自旋三胞胎(qutrit)的种群,使其在 DT 前达到平衡态。这样,qutrit 的纵向弛豫就得到了平衡,从而可以检测到纯 CSD。有趣的是,在退火的块状金刚石中,不仅观察到传统的隧道诱导的快速指数 CSD,还观察到一个缓慢而长期的充电过程,这可能是由于 NV 中心和高能量级电荷阱(如空位簇)之间的电子交换造成的。此外,结果表明,通过适当延长充电 DT,NV-s 的对比度提高了 40%。这些结果对于深入研究 NV 中心的 CSD 具有重要意义,并能提高 NV 组合的传感能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Measurement of Charge State Dynamics in Nitrogen−Vacancy Centers Based on Microwave-Pulses-Assisted Longitudinal Relaxations Balancing of Spin Qutrit

Measurement of Charge State Dynamics in Nitrogen−Vacancy Centers Based on Microwave-Pulses-Assisted Longitudinal Relaxations Balancing of Spin Qutrit

The nitrogen−vacancy (NV) center in diamond gains its versatility when negatively charged (NV) but is mediocre when neutrally charged. Particularly, the charge states of NV centers are convertible under optical pumping and during the dark intervals, whose dynamics are mixed with the NVs’ spin polarizations and relaxations, making them difficult to detect. Here, a microwave-pulses-assisted charge state dynamics (CSD) measurement method of NV centers in the dark time (DT) is proposed. The microwave pulses are designed to manipulate the populations of the NVs’ ground state spin triplets (qutrit) to the equilibrium state before the DT. Thus, the longitudinal relaxations of the qutrit are balanced, and pure CSD can be detected. Interestingly, in an annealed bulk diamond, not only the traditional tunneling-induced fast exponential CSD are observed, but also a slow and long-term recharging process, which is probably attributed to the exchanging of the electrons between NV centers and the high-energy-level charge traps such as vacancy clusters. Furthermore, results demonstrate a 40% increase in NVs’ contrast by properly extending the recharging DT. These results are significant for the in-depth study of the NV centers’ CSD and can improve the sensing abilities of the NV ensemble.

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