论文标题
荧光玻璃纤维用于磁场传感的荧光钻石微粒
Fluorescent diamond microparticles doped glass fiber for magnetic field sensing
论文作者
论文摘要
包含带负电荷的氮脱胶(NV)中心的钻石正在成为磁力测定法的重要新系统。但是,大多数NV传感器都需要显微镜来收集荧光信号,因此仅限于实验室环境。通过在硅酸盐玻璃纤维的横截面内的环形界面上合并微米尺度的钻石颗粒,这里展示了磁场传感的高敏性和稳健的纤维平台。在纤维绘制过程中,嵌入钻石晶体中嵌入的NV中心的荧光和自旋性能得到了很好的保存,从而在纤维传播的传感构型中增强了连续的波浪钻石 - 钻石量测定法。钻石颗粒的界面掺杂还导致纤维传播损失减少,并使NV荧光在杂化纤维中的指导有益。使用钻石纤维系统,可以通过50厘米的纤维读数。这项研究为新型基于纤维的钻石传感器铺平了道路,用于田间可剥离的量子计量应用。
Diamond containing the negatively charged nitrogen-vacancy (NV) center is emerging as a significant new system for magnetometry. However, most NV sensors require microscopes to collect the fluorescence signals and are therefore limited to laboratory settings. By incorporating micron-scale diamond particles at an annular interface within the cross section of a silicate glass fiber, a high-sensitivity and robust fiber platform for magnetic field sensing is demonstrated here. The fluorescence and spin properties of NV centers embedded in the diamond crystals are well preserved during the fiber drawing process, leading to enhanced continuous-wave diamond-magnetometry in fiber-transmitted sensing configurations. The interface doping of diamond particles also leads to reduced fiber propagation loss and benefits the guidance of NV-fluorescence in the hybrid fiber. Using the diamond-fiber system, magnetic field readout through 50 cm of fiber is achieved. This study paves the way for novel fiber-based diamond sensors for field-deployable quantum metrology applications.