首页> 外文期刊>Physical review.B.Condensed matter and materials physics >Cross-relaxation studies with optically detected magnetic resonances in nitrogen-vacancy centers in diamond in external magnetic field
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Cross-relaxation studies with optically detected magnetic resonances in nitrogen-vacancy centers in diamond in external magnetic field

机译:在外部磁场中的金刚石中的氮气空位中心中的光学检测磁共振的交叉放松研究

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In this work, cross relaxation between nitrogen-vacancy (NV) centers and substitutional nitrogen in a diamond crystal is investigated. It is demonstrated that optically detected magnetic resonance signals (ODMR) can be used to probe cross relaxation. ODMR is detected at axial magnetic field values around 51.2 mT in a diamond sample with a relatively high (200 ppm) nitrogen concentration. We observe 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 (ms = 0 → m_S = -1 NV transitions) and from 4.1 to 4.6 GHz. (nis = 0→ 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 is developed that describes the microwave-initiated transitions between hyperfine levels of the NV center at anticrossing that are strongly mixed. Additionally, we simulate the extent to which the microwave radiation driving ODMR in the NV center also induces transitions in the substitutional nitrogen via cross relaxation. The improved understanding of the NV processes in the presence of 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.
机译:在这项工作中,研究了氮空位(NV)中心与金刚石晶体中的替代氮之间的交叉放松。证明光学检测的磁共振信号(ODMR)可用于探测交叉弛豫。在具有相对高(200ppm)氮浓度的金刚石样品中,在轴向磁场值下检测ODMR在轴向磁场值下检测到约51.2mt。我们观察涉及磁化偏离的过渡,这些磁性偏离由高浓度相互作用分裂。频率的微波范围为1.3 GHz到1.6 GHz(MS = 0→M_S = -1 NV转换),4.1到4.6 GHz。 (使用NIS = 0→M_S = +1 NV转换)。为了更详细地理解十字弛豫过程,结果,更准确地再现测量的信号,开发了一种模型,其描述了在强烈混合的抗逆时的NV中心的高血清水平之间的微波引发的转变。另外,我们模拟了在NV中心中的微波辐射驱动ODMR的程度,也可以通过交叉弛豫在取代氮中引起转变。改善对磁场的存在中的NV过程的理解将用于设计基于NV-菱形的装置,用于广泛的应用,从实施Q比特对大分子的超极化到各种量子技术应用,例如现场传感器。

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  • 来源
    《Physical review.B.Condensed matter and materials physics》 |2021年第13期|134104.1-134104.11|共11页
  • 作者单位

    Laser Centre University of Latvia Jelgavas Street 3 LV-1004 Riga Latvia;

    Laser Centre University of Latvia Jelgavas Street 3 LV-1004 Riga Latvia;

    Laser Centre University of Latvia Jelgavas Street 3 LV-1004 Riga Latvia;

    Laser Centre University of Latvia Jelgavas Street 3 LV-1004 Riga Latvia;

    Laser Centre University of Latvia Jelgavas Street 3 LV-1004 Riga Latvia;

    Laser Centre University of Latvia Jelgavas Street 3 LV-1004 Riga Latvia;

    Helmholtz-Institut GSI Helmholtzzentrum fuer Schwerionenforschung 55128 Mainz Germany Johannes Gutenberg-Universitaet Mainz 55128 Mainz Germany Department of Physics University of California at Berkeley Berkeley California 94720-7300 USA;

    Laser Centre University of Latvia Jelgavas Street 3 LV-1004 Riga Latvia;

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