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Three-dimensional localization spectroscopy of individual nuclear spins with sub-Angstrom resolution

机译:亚核分辨率下单个核自旋的三维定位光谱

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Nuclear magnetic resonance (NMR) spectroscopy is a powerful method for analyzing the chemical composition and molecular structure of materials. At the nanometer scale, NMR has the prospect of mapping the atomic-scale structure of individual molecules, provided a method that can sensitively detect single nuclei and measure inter-atomic distances. Here, we report on precise localization spectroscopy experiments of individual 13C nuclear spins near the central electronic sensor spin of a nitrogen-vacancy (NV) center in a diamond chip. By detecting the nuclear free precession signals in rapidly switchable external magnetic fields, we retrieve the three-dimensional spatial coordinates of the nuclear spins with sub-Angstrom resolution and for distances beyond 10??. We further show that the Fermi contact contribution can be constrained by measuring the nuclear g-factor enhancement. The presented method will be useful for mapping atomic positions in single molecules, an ambitious yet important goal of nanoscale nuclear magnetic resonance spectroscopy.
机译:核磁共振(NMR)光谱是一种用于分析材料的化学组成和分子结构的强大方法。在纳米尺度上,NMR具有绘制单个分子的原子尺度结构的前景,提供了一种可以灵敏地检测单个核并测量原子间距离的方法。在这里,我们报告了单个13 C核自旋在钻石芯片中氮空位(NV)中心的中央电子传感器自旋附近的精确定位光谱实验。通过在可快速切换的外部磁场中检测无核进动信号,我们以亚埃分辨率和超过10的距离检索了核自旋的三维空间坐标。我们进一步表明,费米接触贡献可以通过测量核g因子增强来约束。提出的方法将可用于绘制单分子中的原子位置,这是纳米级核磁共振光谱学的一个雄心勃勃但重要的目标。

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