Harvard-Smithsonian Center for Astrophysics, Cambridge, MA, USA.
Department of Physics, Harvard University, Cambridge, MA, USA.
Nat Protoc. 2019 Sep;14(9):2707-2747. doi: 10.1038/s41596-019-0201-3. Epub 2019 Aug 26.
Nitrogen-vacancy (NV) quantum defects in diamond are sensitive detectors of magnetic fields. Owing to their atomic size and optical readout capability, they have been used for magnetic resonance spectroscopy of nanoscale samples on diamond surfaces. Here, we present a protocol for fabricating NV diamond chips and for constructing and operating a simple, low-cost 'quantum diamond spectrometer' for performing NMR and electron spin resonance (ESR) spectroscopy in nanoscale volumes. The instrument is based on a commercially available diamond chip, into which an NV ensemble is ion-implanted at a depth of 10 nm below the diamond surface. The spectrometer operates at low magnetic fields (300 G) and requires standard optical and microwave (MW) components for NV spin preparation, manipulation, and readout. We demonstrate the utility of this device for nanoscale proton and fluorine NMR spectroscopy, as well as for the detection of transition metals via relaxometry. We estimate that the full protocol requires 2-3 months to implement, depending on the availability of equipment, diamond substrates, and user experience.
氮空位(NV)量子缺陷在钻石中是磁场的敏感探测器。由于其原子大小和光学读出能力,它们已被用于钻石表面纳米级样品的磁共振波谱学研究。在这里,我们提出了一种制造 NV 钻石芯片的方案,并构建和操作了一种简单、低成本的“量子钻石光谱仪”,用于在纳米体积中进行 NMR 和电子自旋共振(ESR)光谱学实验。该仪器基于市售的钻石芯片,在钻石表面以下约 10nm 的深度处离子注入 NV 集合体。该光谱仪在低磁场(~300G)下运行,并且需要标准的光学和微波(MW)组件来进行 NV 自旋的制备、操控和读出。我们展示了该设备在纳米级质子和氟 NMR 光谱学以及通过弛豫测量检测过渡金属方面的应用。我们估计,根据设备、钻石衬底和用户经验的可用性,完整的方案需要 2-3 个月的时间来实施。