Mariusz Mrózek, Adam Filipkowski, Wojciech Gawlik, Ryszard Buczyński, Adam M. Wojciechowski, Mariusz Klimczak
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Instead of relying on these approaches, we\nleveraged cross-relaxations of particular spin-state populations of the NV\ncenter under a magnetic field, thus observing zero-field resonances and making\nexternal radio frequency fields redundant. Combined with an optical fiber\nsensitive to the magnetic field along its entire length, remote sensing was\nrealized that returned information on the spatial field distribution without\nusing any moving mechanical elements in the detection system. Variation of the\nspatial parameters of the investigated field was achieved simply by controlling\nthe current in a pair of induction coils easily integrable with optical fibers\nwithout limiting the fiber-specific functionality of the optical readout taking\nplace at a fixed location at the optical fiber output. Lifting of the\nrequirements related to the mechanical scanning of the fiber, the application\nof external fields, and the orientation of the NV centers against the measured\nfield mark a very practical step forward in optically driven magnetic field\nsensing, not easily achievable with earlier implementations.","PeriodicalId":501083,"journal":{"name":"arXiv - PHYS - Applied Physics","volume":"79 1","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-09-09","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Localization of macroscopic sources of magnetic field using optical fibers doped with NV-rich sub-micron diamonds and zero-field resonance\",\"authors\":\"Mariusz Mrózek, Adam Filipkowski, Wojciech Gawlik, Ryszard Buczyński, Adam M. 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引用次数: 0
摘要
我们采用掺杂了随机定向荧光亚微米级金刚石的光纤和新颖的零场共振协议来收集有关磁场源的定位和定向及其分布的信息。以前的许多基于金刚石的磁场感应演示都通过利用外部施加的无线电或微波操纵金刚石氮空位(NV)中心的自旋态,实现了低至 fT 范围的超高灵敏度。这种振荡场的应用在分布式磁场测量中存在问题,而且可能与特定目标不兼容。我们没有依赖这些方法,而是利用磁场下 NV 中心特定自旋态群的交叉松弛,从而观测到零场共振,使外部射频场成为多余。结合对整个长度上的磁场敏感的光纤,实现了遥感,在探测系统中不使用任何移动机械元件的情况下,就能返回空间磁场分布的信息。只需控制一对感应线圈中的电流,就能实现被测磁场空间参数的变化,而无需限制光纤输出端固定位置的光读出功能。取消了与光纤机械扫描、外部磁场应用和 NV 中心对测量磁场的定向有关的要求,标志着光驱动磁场感应技术向前迈出了非常实用的一步,这在以前的实现方法中是不容易做到的。
Localization of macroscopic sources of magnetic field using optical fibers doped with NV-rich sub-micron diamonds and zero-field resonance
We employ an optical fiber doped with randomly oriented fluorescent
sub-micron diamonds and the novel zero-field resonance protocol to collect
information on the localization and orientation of a magnetic-field source and
its distribution. Many previous demonstrations of diamond-based magnetic field
sensing achieved ultrahigh sensitivities down to the fT range warranted by
manipulating spin states of the diamond nitrogen vacancy (NV) centers with
externally applied radio or microwaves. The application of such oscillating
fields is problematic in distributed magnetic-field measurements and may be
incompatible with specific targets. Instead of relying on these approaches, we
leveraged cross-relaxations of particular spin-state populations of the NV
center under a magnetic field, thus observing zero-field resonances and making
external radio frequency fields redundant. Combined with an optical fiber
sensitive to the magnetic field along its entire length, remote sensing was
realized that returned information on the spatial field distribution without
using any moving mechanical elements in the detection system. Variation of the
spatial parameters of the investigated field was achieved simply by controlling
the current in a pair of induction coils easily integrable with optical fibers
without limiting the fiber-specific functionality of the optical readout taking
place at a fixed location at the optical fiber output. Lifting of the
requirements related to the mechanical scanning of the fiber, the application
of external fields, and the orientation of the NV centers against the measured
field mark a very practical step forward in optically driven magnetic field
sensing, not easily achievable with earlier implementations.