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Sensing Electrochemical Signals Using a Nitrogen-Vacancy Center in Diamond

机译:使用钻石中的氮空位中心感测电化学信号

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摘要

Chemical sensors with high sensitivity that can be used under extreme conditions and can be miniaturized are of high interest in science and industry. The nitrogen-vacancy (NV) center in diamond is an ideal candidate as a nanosensor due to the long coherence time of its electron spin and its optical accessibility. In this theoretical work, we propose the use of an NV center to detect electrochemical signals emerging from an electrolyte solution, thus obtaining a concentration sensor. For this purpose, we propose the use of the inhomogeneous dephasing rate of the electron spin of the NV center (1/T2★) as a signal. We show that for a range of mean ionic concentrations in the bulk of the electrolyte solution, the electric field fluctuations produced by the diffusional fluctuations in the local concentration of ions result in dephasing rates that can be inferred from free induction decay measurements. Moreover, we show that for a range of concentrations, the electric field generated at the position of the NV center can be used to estimate the concentration of ions.
机译:具有高灵敏度的化学传感器,可在极端条件下使用,并且可以小型化对科学和工业感兴趣。由于其电子旋转的长相干时间及其光学可接近性,金刚石中的氮空位(NV)中心是纳米传感器的理想候选者。在本作理论上,我们提出了使用NV中心来检测从电解质溶液中出现的电化学信号,从而获得浓度传感器。为此目的,我们提出了使用NV中心(1 / T2★)的电子旋转的非均匀除去率作为信号。我们表明,对于电解质溶液的大量的平均离子浓度,通过离子局部浓度的扩散波动产生的电场波动导致可以从游离感应衰变测量中推断出的速率。此外,我们表明,对于一系列浓度,可以使用在NV中心位置产生的电场来估计离子的浓度。

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