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Efficient route to high-bandwidth nanoscale magnetometry using single spins in diamond

机译:使用金刚石中的单自旋高效地进行高带宽纳米级磁力测量的方法

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摘要

Nitrogen-vacancy (NV) center in diamond is a promising quantum metrology tool finding applications across disciplines. The spin sensor measures magnetic fields, electric fields and temperature with nano-scale precision and is fully operable under ambient conditions. Moreover, it achieves precision scaling inversely with total measurement time σB ∝ 1/T (Heisenberg scaling) rather than as the inverse of the square root of T, with the Shot-Noise limit. This scaling can be achieved by means of phase estimation algorithms (PEAs), in combination with single-shot read-out. Despite their accuracy, the range of applicability of PEAs is limited to sensing single frequencies with negligible temporal fluctuations. Nuclear Magnetic Resonance (NMR) signals from molecules often contain multifrequency components and sensing them using PEA is ruled out. Here we propose an alternative method for precision magnetometry in frequency multiplexed signals via compressive sensing (CS) techniques focusing on nanoscale NMR. We show that CS can provide for precision scaling approximately as σB ≈ 1/T, as well as for a 5-fold increase in sensitivity over dynamic-range gain, in addition to reducing the total number of resources required. We illustrate our method by taking model solid-state spectra of Glycine acquired under Magic Angle Spinning conditions.
机译:钻石中的氮空位(NV)中心是一种有前途的量子计量工具,可在各个学科中找到应用。自旋传感器可以纳米级的精度测量磁场,电场和温度,并且可以在环境条件下完全运行。而且,它以总测量时间σB∝ 1 / T(海森堡缩放)成反比,而不是以T的平方根成反比(具有散粒噪声极限)来实现精确缩放。可以通过相位估计算法(PEA)结合单次读取来实现这种缩放。尽管具有准确性,但PEA的适用范围仅限于以可忽略的时间波动来感测单个频率。来自分子的核磁共振(NMR)信号通常包含多频分量,因此排除了使用PEA对其进行感测的情况。在这里,我们提出了一种通过专注于纳米NMR的压缩传感(CS)技术在频率复用信号中进行精确磁力测量的替代方法。我们表明,CS可以提供​​大约σB≈1 / T的精确缩放,并且除了减少所需的资源总数之外,还可以使灵敏度比动态范围增益提高5倍。我们通过在魔角旋转条件下获得的甘氨酸模型固态光谱来说明我们的方法。

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