CMOS integrated hyperpolarized NMR using NV centers in diamond (Conference Presentation)

J. Anders, I. Schwartz, K. Lips, M. Plenio, F. Jelezko
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Abstract

Thanks to their unmatched specificity, nuclear magnetic resonance (NMR) and electron spin resonance (ESR) spectroscopy – jointly referred to as spin-based analytics – are tools of major importance in biology, chemistry, medicine and physics because they allow for the use of a spin (nuclear or electron) as an extremely sensitive, nanoscopic quantum probe of its electronic and magnetic environment inside a molecule. However, their main limitations are high equipment complexity and cost as well as a relatively poor sensitivity due to the very small thermal polarisation of the spin ensembles at room temperature. This poor sensitivity in turn severely compromises the required measurement time, the achievable signal-to-noise ratio and the minimum sample size. In the proposed talk, we will first introduce the so-called ESR-on-a-chip approach as a new tool in ESR spectroscopy that allows for a CMOS integrated manipulation and detection of electron spins up to very high frequencies in the hundreds of Gigahertz range. We will then discuss the use of nitrogen vacancy (NV) centers in diamond as a potential tool for hyperpolarizing a nuclear spin ensemble at ambient conditions using a laser and the abovementioned ESR-on-a-chip sensors as a compact and cheap, yet high-performance microwave source. Finally, we will introduce the NMR-on-a-chip approach, which integrates an entire NMR spectrometer into a tiny CMOS application specific integrated circuit (ASIC), as a very promising path towards miniaturizing the entire NMR spectrometer including the NV-based hyperpolarization into a compact portable system, which can extend the application range of NMR into entirely new areas including personalized medicine.
利用金刚石中NV中心的CMOS集成超极化核磁共振(会议报告)
由于其无与伦比的特异性,核磁共振(NMR)和电子自旋共振(ESR)光谱-共同称为基于自旋的分析-是生物学,化学,医学和物理学中重要的工具,因为它们允许使用自旋(核或电子)作为分子内部电子和磁性环境的极其敏感的纳米级量子探针。然而,它们的主要限制是高设备复杂性和成本,以及由于室温下自旋综的热极化非常小而相对较差的灵敏度。这种低灵敏度反过来严重影响所需的测量时间,可实现的信噪比和最小样本量。在本次演讲中,我们将首先介绍所谓的ESR-on-a-chip方法,作为ESR光谱中的一种新工具,它允许CMOS集成操作和检测电子自旋高达数百千兆赫范围内的非常高频率。然后,我们将讨论金刚石中的氮空位(NV)中心作为一种潜在的工具,在环境条件下使用激光和上述esr芯片传感器作为一种紧凑、廉价、高性能的微波源,实现核自旋系综的超极化。最后,我们将介绍将整个核磁共振波谱仪集成到微型CMOS应用专用集成电路(ASIC)中的核磁共振片上方法,这是将整个核磁共振波谱仪(包括基于nv的超极化)小型化为紧凑便携式系统的一个非常有前途的途径,可以将核磁共振的应用范围扩展到包括个性化医疗在内的全新领域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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