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High-efficiency resonant amplification of weak magnetic fields for single spin magnetometry at room temperature

机译:用于室温下单次旋转磁力测定的弱磁场的高效共振放大

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摘要

Magnetic resonance techniques not only provide powerful imaging tools that have revolutionized medicine, but they have a wide spectrum of applications in other fields of science such as biology, chemistry, neuroscience and physics. However, current state-of-the-art magnetometers are unable to detect a single nuclear spin unless the tip-to-sample separation is made sufficiently small. Here, we demonstrate theoretically that by placing a ferromagnetic particle between a nitrogen–vacancy magnetometer and a target spin, the magnetometer sensitivity is improved dramatically. Using materials and techniques that are already experimentally available, our proposed set-up is sensitive enough to detect a single nuclear spin within ten milliseconds of data acquisition at room temperature. The sensitivity is practically unchanged when the ferromagnet surface to the target spin separation is smaller than the ferromagnet lateral dimensions; typically about a tenth of a micrometre. This scheme further benefits when used for nitrogen–vacancy ensemble measurements, enhancing sensitivity by an additional three orders of magnitude.
机译:磁共振技术不仅提供了已经彻底改变医学的强大成像工具,而且在生物学,化学,神经科学和物理学等其他科学领域也具有广泛的应用。但是,除非将尖端到样品的间距做得足够小,否则当前的最新磁力计无法检测到单个核自旋。在这里,我们从理论上证明,通过在氮空位磁力计和目标自旋之间放置一个铁磁粒子,磁力计的灵敏度会大大提高。使用已经通过实验获得的材料和技术,我们提出的设置足够灵敏,可以在室温下获取数据的十毫秒内检测到单个核自旋。当铁磁体表面相对于目标自旋间隔小于铁磁体横向尺寸时,灵敏度几乎不变。通常约为十分之一微米。当用于氮-空位系综测量时,该方案进一步受益,将灵敏度提高了三个数量级。

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