Department of Physics, ETH Zurich, Otto Stern Weg 1, 8093 Zurich, Switzerland.
Science. 2017 May 26;356(6340):837-840. doi: 10.1126/science.aam7009.
Quantum sensing takes advantage of well-controlled quantum systems for performing measurements with high sensitivity and precision. We have implemented a concept for quantum sensing with arbitrary frequency resolution, independent of the qubit probe and limited only by the stability of an external synchronization clock. Our concept makes use of quantum lock-in detection to continuously probe a signal of interest. Using the electronic spin of a single nitrogen-vacancy center in diamond, we demonstrate detection of oscillating magnetic fields with a frequency resolution of 70 microhertz over a megahertz bandwidth. The continuous sampling further guarantees an enhanced sensitivity, reaching a signal-to-noise ratio in excess of 10 for a 170-nanotesla test signal measured during a 1-hour interval. Our technique has applications in magnetic resonance spectroscopy, quantum simulation, and sensitive signal detection.
量子传感利用经过良好控制的量子系统来进行高灵敏度和高精度的测量。我们已经实现了一种具有任意频率分辨率的量子传感概念,该概念与量子位探针无关,仅受外部同步时钟稳定性的限制。我们的概念利用量子锁定检测来连续探测感兴趣的信号。我们使用金刚石中单个氮空位中心的电子自旋,演示了在兆赫兹带宽内以 70 微赫兹的频率分辨率检测振荡磁场。连续采样进一步保证了更高的灵敏度,对于在 1 小时测量期间测量的 170 纳特斯拉测试信号,达到了超过 10 的信噪比。我们的技术在磁共振光谱学、量子模拟和敏感信号检测中有应用。