论文标题

在外部磁场中钻石中的氮 - 脱牙中心中,具有光学检测到的磁共振的交叉解释研究

Cross-relaxation studies with optically detected magnetic resonances in nitrogen-vacancy centers in diamond in an external magnetic field

论文作者

Lazda, Reinis, Busaite, Laima, Berzins, Andris, Smits, Janis, Auzinsh, Marcis, Budker, Dmitry, Ferber, Ruvin, Gahbauer, Florian

论文摘要

在本文中,研究了氮气晶体中的氮呈(NV)中心和替代氮之间的交叉递延。已证明可以使用光学检测到的磁共振信号(ODMR)成功地测量这些信号。在相对较高(200〜ppm)氮浓度的钻石样品中,在轴向磁场值处检测到ODMR。我们观察到涉及通过超精细相互作用分裂的磁性级别的过渡。使用频率的微波范围从1.3 GHz到1.6 GHz($ m_s = 0 \ longrightArrow m_s = -1 $ nv Transitions)和4.1至4.6 GHz($ M_S = 0 \ longrightArrow M_S =+1 $ nv Transitions)。 为了更详细地了解交叉解释过程,因此,更准确地重现了测量的信号,开发了一个模型,描述了NV中心的高精细水平之间的微波启动的过渡,该过渡正在进行反杂交,并在施加的磁场中强烈混合。此外,我们模拟了微波辐射在NV中心中诱导ODMR的多大程度,还通过交叉解释诱导替代氮的过渡。 在存在磁场的情况下,对NV过程的改进理解将有助于设计基于NV的基于NV的设备,用于从实施Q位到大分子的超极化到各种量子技术应用(例如场传感器)的广泛应用。

In this paper cross-relaxation between nitrogen-vacancy (NV) centers and substitutional nitrogen in a diamond crystal was studied. It was demonstrated that optically detected magnetic resonance signals (ODMR) can be used to measure these signals successfully. The ODMR were detected at axial magnetic field values around 51.2~mT in a diamond sample with a relatively high (200~ppm) nitrogen concentration. We observed transitions that involve magnetic sublevels that are split by the hyperfine interaction. Microwaves in the frequency ranges from 1.3 GHz to 1.6 GHz ($m_S=0\longrightarrow m_S=-1$ NV transitions) and from 4.1 to 4.6 GHz ($m_S=0\longrightarrow m_S=+1$ NV transitions) were used. To understand the cross-relaxation process in more detail and, as a result, reproduce measured signals more accurately, a model was developed that describes the microwave-initiated transitions between hyperfine levels of the NV center that are undergoing anti-crossing and are strongly mixed in the applied magnetic field. Additionally, we simulated the extent to which the microwave radiation used to induce ODMR in the NV center also induced transitions in the substitutional nitrogen via cross-relaxation. The improved understanding of the NV processes in the presence of a magnetic field will be useful for designing NV-diamond-based devices for a wide range of applications from implementation of q-bits to hyperpolarization of large molecules to various quantum technological applications such as field sensors.

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