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首页> 外文期刊>Frontiers in Physics >Optimization of a Diamond Nitrogen Vacancy Centre Magnetometer for Sensing of Biological Signals
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Optimization of a Diamond Nitrogen Vacancy Centre Magnetometer for Sensing of Biological Signals

机译:钻石氮空缺中心磁力计的优化,用于感测生物信号

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摘要

Sensing of signals from biological processes, such as action potential propagation in nerves, are essential for clinical diagnosis and basic understanding of physiology. Sensing can be performed electrically by placing sensor probes near or inside a living specimen or dissected tissue using well established electrophysiology techniques. However, these electrical probe techniques have poor spatial resolution and cannot easily access tissue deep within a living subject, in particular within the brain. An alternative approach is to detect the magnetic field induced by the passage of the electrical signal, giving the equivalent readout without direct electrical contact. Such measurements are performed today using bulky and expensive superconducting sensors with poor spatial resolution. An alternative is to use nitrogen vacancy (NV) centres in diamond that promise biocompatibilty and high sensitivity without cryogenic cooling. In this work we present advances in biomagnetometry using NV centres, demonstrating magnetic field sensitivity of approximately 100 pT/sqrt(Hz) in the DC/low frequency range using a setup designed for biological measurements. Biocompatibility of the setup with a living sample (mouse brain slice) is studied and optimized, and we show work toward sensitivity improvements using a pulsed magnetometry scheme. In addition to the bulk magnetometry study, systematic artifacts in NV-ensemble widefield fluorescence imaging are investigated.
机译:感测来自生物过程的信号,例如动作在神经中繁殖,对临床诊断和对生理学的基本了解是必不可少的。通过使用明确建立的电生理技术将传感器探针放置在活性标本或解剖组织附近或解剖组织内,可以电动进行感测。然而,这些电气探针技术具有较差的空间分辨率,并且不能容易地在生活群体内深入接入组织,特别是在大脑内。替代方法是检测由电信号通道引起的磁场,给出不直接电接触的等效读出。今天使用这种测量来使用具有差的空间分辨率的笨重和昂贵的超导传感器。替代方案是在钻石中使用氮空位(NV)中心,该中心承诺在没有低温冷却的情况下承诺生物相容性和高敏感性。在这项工作中,我们使用NV中心呈现生物磁化法的进展,使用设计用于生物测量的设置,在DC /低频范围内展示大约100pt / SQRT(Hz)的磁场灵敏度。研究和优化了用活样品(小鼠脑切片)的设置的生物相容性,并使用脉冲磁体方案显示致敏改善的敏感性改进。除了散装磁体研究之外,研究了NV-系域宽场荧光成像的系统伪影。

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