论文标题
核自旋辅助磁场角度传感
Nuclear Spin Assisted Magnetic Field Angle Sensing
论文作者
论文摘要
量子传感利用量子系统的强灵敏度来测量小型外部信号。 Diamond中的氮呈(NV)中心是现实世界中量子传感应用最有前途的平台之一,主要用作磁力计。但是,当偏置磁场垂直于NV轴时,其磁场灵敏度就会消失。在这里,我们介绍了一种新型的感应策略,该策略得到了氮核自旋的辅助,该氮核自旋使用电子和核自旋之间的纠缠来恢复磁场灵敏度。反过来,这使我们能够检测到相对于NV轴的磁场角度的小变化。此外,基于相同的基本原理,我们表明NV耦合强度与磁噪声以及其连贯性时间具有强大的不对称角度依赖性。这使我们能够发现局部磁性环境的定向特性,并实现与各向异性噪声的最大脱钩。
Quantum sensing exploits the strong sensitivity of quantum systems to measure small external signals. The nitrogen-vacancy (NV) center in diamond is one of the most promising platforms for real-world quantum sensing applications, predominantly used as a magnetometer. However, its magnetic field sensitivity vanishes when a bias magnetic field acts perpendicular to the NV axis. Here, we introduce a novel sensing strategy assisted by the nitrogen nuclear spin that uses the entanglement between the electron and nuclear spins to restore the magnetic field sensitivity. This, in turn, allows us to detect small changes in the magnetic field angle relative to the NV axis. Furthermore, based on the same underlying principle, we show that the NV coupling strength to magnetic noise, and hence its coherence time, exhibits a strong asymmetric angle dependence. This allows us to uncover the directional properties of the local magnetic environment and to realize maximal decoupling from anisotropic noise.