440 | 2 | 42 |
下载次数 | 被引频次 | 阅读次数 |
金刚石氮空位(NV)色心作为高灵敏度的磁强计被广泛应用于各种领域。针对矢量磁场探测问题,在理论上建立了NV色心矢量磁场探测的物理模型,并通过仿真得到了磁场与NV色心晶向的定量关系;实验中,自主搭建了共聚焦光路测量系统,通过测量光探测磁共振(ODMR)及Rabi振荡光谱信号,得到了不同磁场角度下的信号,实验结果与理论仿真相符。磁场可检测带宽为0~10 kHz,更高的带宽可通过脉冲调控实现。磁场的角度分辨率为5°,当角度偏转5°,荧光光谱电子自旋共振(ESR)信号以及Rabi振荡信号发生明显变化,且通过噪声谱得到三轴磁场的最小可检测灵敏度为■。通过理论和实验验证了不同的矢量磁场会对NV色心产生不同的变化,表明其矢量磁强计的可行性。研究结果为以后NV色心磁强计的发展提供了技术支持。
Abstract:As a high sensitive magnetometer, the color center of diamond nitrogen vacancy(NV) is widely used in various fields. For the problem of vector magnetic field detection, the physical model of NV color center vector magnetic field detection was established in theory, and the quantitative relationship between the magnetic field and NV color center crystal orientation was obtained through simulation. In the experiment, the confocal optical path measurement system was built independently, and the signals under the magnetic field with different angles were obtained by measuring the optical detection of magnetic resonance(ODMR) and Rabi oscillation spectral signals. The experimental results are consistent with the theoretical simulation. The detectable bandwidth of the magnetic field is 0-10 kHz, and higher bandwidth can be achieved by pulse regulation. The angle resolution of the magnetic field is 5°, and the electron spin resonance(ESR) signal and Rabi oscillation signal of the fluorescence spectrum change obviously when the angle deflects 5°, and the minimum detectable sensitivity of the triaxial magnetic field is ■ by noise spectrum. It is verified by theory and experiment verification that different vector magnetic fields change differently to the NV color center, indicating the feasibility of the vector magnetometer. The research result provides technical support for the development of the NV color center magnetometer in the future.
[1] JELEZKO F,GAEBEL T,POPA I,et al.Observation of coherent oscillations in a single electron spin[J].Physical Review Letters,2004,92(7):076400-076401.
[2] 张琪.基于室温单自旋磁共振技术的量子精密测量[D].合肥:中国科学技术大学,2014.
[3] DOLDE F,FEDDER H,DOHERTY M W,et al.Electric-field sensing using single diamond spins[J].Nature Phy-sics,2011,7(6):459-463.
[4] IWASAKIT T,NARUKI W,TAHARA K,et al.Direct nanoscale sensing of the internal electric field in operating semiconductor devices using single electron spins[J].ACS Nano,2017,11(2):1238-1245.
[5] LAI N D,ZHENG D,JELEZKO F,et al.Influence of a static magnetic field on the photoluminescence of an ensemble of nitrogen-vacancy color centers in a diamond single-crystal[J].Applied Physics Letters,2009,95(13):133101-1-133101-3.
[6] KEHAYIAS P,JARMOLA A,BUDKER D.Longitudinal spin relaxation in nitrogen-vacancy defect centers in diamond[C] // Proceedings of the 46th Annual Meeting of the APS Division of Atomic,Molecular and Optical Physics.Columbus,Ohio,USA,2015:180-185.
[7] KUCCSKO G,MAURER P C,YAO N Y,et al.Nanometer scale quantum thermometry in a living cell[J].Nature,2013,500(7460):54-58.
[8] LIU G Q,FENG X,WANG N,et al.Coherent quantum control of nitrogen-vacancy center spins near 1 000 kelvin[J].Nature communications,2019,10(1):1344-1-1344-8.
[9] DOHERTY M W,STRUZHKIN V V,SIMPSON D A,et al.Electronic properties and metrology applications of the diamond NV-center under pressure[J].Physics Review Letters,2014,112(4):047601-1-047601-5.
[10] STEELE L G,LAWSON M,ONYSZCZAK M,et al.Optically detected magnetic resonance of nitrogen vacancies in a diamond anvil cell using designer diamond anvils[J].Applied Physics Letters,2017,111(22):221903-1-221903-5.
[11] TETIENNE J P,HINGANT T,KIM J V,et al.Nanoscale imaging and control of domain-wall hopping with a nitrogen-vacancy center microscope[J].Science,2014,344(6190):1366-1369.
[12] THIEL L,ROHNER D,GANZHORH M,et al.Quantitative nanoscale vortex imaging using a cryogenic quantum magnetometer[J].Nature Nanotechnology,2016,11(1):677-681.
[13] CASOLA F,TOENO V D S,YACOBY A.Probing condensed matter physics with magnetometry based on nitrogen-vacancy centres in diamond[J].Nature Reviews Materials,2018,3(1):17088-1-17088-5.
[14] ACOSTA V M,BAUCH E,LEDBETTER M P,et al.Diamonds with a high density of nitrogen-vacancy centers for magnetometry applications[J].Physical Review:B,2009,80(11):5202-5217.
[15] 宋学瑞.纳米金刚石中NV色心的制备与量子调控研究[D].合肥:中国科学技术大学,2014.
[16] BARRY J F,TURNER M J,SCHLOSS J M,et al.Optical magnetic detection of single-neuron action potentials using quantum defects in diamond[J].Proceedings of the National Academy of Sciences,2016,113(49):14133-14138.
[17] RONDIN L,TETIENNE J P,HINGANT T,et al.Magnetometry with nitrogen-vacancy defects in diamond[J].Reports on Progress in Physics,2013,45(42):056502-056504.
[18] MAZE J R,STANWIX P L,HODGES J S,et al.Nanoscale magnetic sensing with an individual electronic spin in diamond[J].Nature,2008,455(7213):644-647.
[19] DU J F,RONG X,ZHAO N,et al.Preserving electron spin coherence in solids by optimal dynamical decoupling[J].Nature,2009,461(7268):1265-1268.
[20] AVALOS C E.Detection and polarization of nuclear and electron spins using nitrogen-vacancy centers[D].Berkely:UC Berkely,2014.
[21] BARRY J F,SCHLOSS J M,BAUCH E,et al.Sensitivity optimization for NV-diamond magnetometry[J].Reviews of Modern Physics,2019,92:3-4.
[22] SCHOENFELD R S,HARNEIT W.Real time magnetic field sensing and imaging using a single spin in diamond[J].Physical Review Letters,2011,106(3):030802-1-030802-4.
[23] PHAM L M.Magnetic field sensing with nitrogen-vacancy color centers in diamond[D].Cambridge:Harvard University,2013.
[24] de LANGE G,WANG Z H,RISTè D,et al.Universal dynamical decoupling of a single solid-state spin from a spin bath[J].Science,2010,330(6000):60-63.
[25] KITAZAWA S,MATSUZAKI Y,SAIJO S,et al.Vector-magnetic-field sensing via multifrequency control of nitrogen-vacancy centers in diamond[J].Physical Review:A,2017,96(4):042115-1-042115-7.
[26] YAHATA K,MATSUZAKI Y,SAITO S,et al.Demonstration of vector magnetic field sensing by simultaneous control of nitrogen-vacancy centers in diamond using multi-frequency microwave pulses[J].Applied Physics Letters,2019,114(2):022404-1-022404-5.
[27] ZHAO B B,GUO H,ZHAO R,et al.High-sensitivity three-axis vector magnetometry using the electron spin ensembles in single diamond[J].IEEE Magnetics Letters,2019,10 (99):1-2.
[28] MAERTZ B J,WIJNHEIJMER A P,FUCHS G D,et al.Vector magnetic field microscopy using nitrogen vacancy centers in diamond[J].Applied Physics Letters,2010,96(9):092503-092505.
基本信息:
DOI:10.13250/j.cnki.wndz.2021.08.006
中图分类号:TM936
引用信息:
[1]王军旗,柴笑晗,牛刘敏等.基于金刚石氮空位色心的矢量磁强计[J].微纳电子技术,2021,58(08):700-707.DOI:10.13250/j.cnki.wndz.2021.08.006.
基金信息:
山西省重点研发计划项目(201903D121128); 山西省1331工程项目; 2019年山西省高等学校创新人才支持计划项目