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Atomic-Scale Nuclear Spin Imaging Using Quantum-Assisted Sensors in Diamond

机译:使用量子辅助传感器的钻石原子级核自旋成像。

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Nuclear spin imaging at the atomic level is essential for the understanding of fundamental biological phenomena and for applications such as drug discovery. The advent of novel nanoscale sensors promises to achieve the long-standing goal of single-protein, high spatial-resolution structure determination under ambient conditions. In particular, quantum sensors based on the spin-dependent photoluminescence of nitrogen-vacancy (NV) centers in diamond have recently been used to detect nanoscale ensembles of external nuclear spins. While NV sensitivity is approaching single-spin levels, extracting relevant information from a very complex structure is a further challenge since it requires not only the ability to sense the magnetic field of an isolated nuclear spin but also to achieve atomic-scale spatial resolution. Here, we propose a method that, by exploiting the coupling of the NV center to an intrinsic quantum memory associated with the nitrogen nuclear spin, can reach a tenfold improvement in spatial resolution, down to atomic scales. The spatial resolution enhancement is achieved through coherent control of the sensor spin, which creates a dynamic frequency filter selecting only a few nuclear spins at a time. We propose and analyze a protocol that would allow not only sensing individual spins in a complex biomolecule, but also unraveling couplings among them, thus elucidating local characteristics of the molecule structure.
机译:原子级的核自旋成像对于理解基本生物学现象和药物开发等应用至关重要。新型纳米传感器的问世有望实现在环境条件下确定单蛋白,高空间分辨率结构的长期目标。特别地,基于金刚石中氮空位(NV)中心的自旋相关光致发光的量子传感器最近已用于检测外部核自旋的纳米级集合。当NV灵敏度接近单旋水平时,从非常复杂的结构中提取相关信息是一个进一步的挑战,因为它不仅需要感知孤立核自旋磁场的能力,而且还需要实现原子级的空间分辨率。在这里,我们提出了一种方法,该方法通过利用NV中心与与氮核自旋相关的本征量子存储器的耦合,可以将空间分辨率降低至原子级,提高十倍。空间分辨率的提高是通过对传感器自旋的相干控制实现的,这将创建一个动态频率滤波器,一次仅选择几个核自旋。我们提出并分析了一种协议,该协议不仅允许感知复杂生物分子中的单个自旋,而且还可以揭示它们之间的偶联,从而阐明分子结构的局部特征。

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