论文标题
用钻石中氮的氮化中心的RF调节状态感测温度
Temperature Sensing with RF-Dressed States of Nitrogen-Vacancy Centers in Diamond
论文作者
论文摘要
钻石中的氮空位(NV)中心是实现敏感温度传感器的有前途的系统。脉冲光学检测到的磁共振(脉冲-ODMR)是使用NV中心测量温度的方法之一。但是,脉冲-ODMR需要仔细的校准和严格的时间同步才能控制微波脉冲,从而使其适用性复杂化。但是,NV中心中连续波光学检测到的磁共振(CW-ODMR)是另一种更有利的方法,可以通过连续使用绿色激光器和微波炉来测量NV中心的温度,这是一种更有利的方法。但是,与脉冲-ODMR相比,这具有较低的灵敏度的缺点。因此,为了使其可访问的适应性受益,这对于提高CW-ODMR温度感测的敏感性非常重要。在这里,我们提出了一种新的方法,使用CW-ODMR测量温度,其在横向磁场下穿着射频(RF)场的量子状态。由于菌株的变化,RF场有望抑制不均匀的扩展。实验结果证实,与传统的方案相比,线宽在我们的方案中变窄。此外,我们估计灵敏度约为65.5 $ \ mathrm {M} \ Mathrm {k}/\ sqrt {\ Mathrm {hz}} $,相对于传统方案的敏感性,大约构成了大约七倍的提高。
Nitrogen vacancy (NV) centers in diamond are promising systems for realizing sensitive temperature sensors. Pulsed optically detected magnetic resonance (Pulsed-ODMR) is one of the ways to measure the temperature using NV centers. However, Pulsed-ODMR requires careful calibration and strict time synchronization to control the microwave pulse, which complicates its applicability. Nonetheless, the continuous-wave optically detected magnetic resonance (CW- ODMR) in NV centers is another more advantageous way to measure temperature with NV centers, owing to its simple implementation by applying a green laser and microwave in a continuous manner. This, however, has the drawback of a lower sensitivity compared to pulsed-ODMR. Therefore, to benefit from its accessible adaptation, it is highly important to improve the sensitivity of temperature sensing with CW-ODMR. Here, we propose a novel method to measure temperature using CW-ODMR with a quantum state dressed by radio-frequency (RF) fields under transverse magnetic fields. RF fields are expected to suppress inhomogeneous broadening owing to strain variations. Experimental results confirmed that the linewidth becomes narrower in our scheme compared to the conventional one. Moreover, we estimated the sensitivity to be approximately 65.5 $\mathrm{m}\mathrm{K}/\sqrt{\mathrm{Hz}}$, which constitutes approximately seven times improvement with respect to the sensitivity of the conventional scheme.