论文标题
使用金属有机框架将液体样品限制为纳米级NV-NMR
Using metal-organic frameworks to confine liquid samples for nanoscale NV-NMR
论文作者
论文摘要
基于钻石中氮空位(NV)缺陷的原子尺度磁场传感器是纳米级核磁共振(NMR)光谱的令人兴奋的平台。使用靠近钻石表面的NV中心证明了从几个Zeptoliter到单个分子甚至单个核自旋的NMR信号的检测。但是,样品分子在纳米级检测量中的快速分子扩散阻碍了它们的检测,并将当前的实验限制为固态或高粘性样品。在这里,我们表明限制通过限制的扩散使液体样品的纳米级NMR光谱法。我们的方法使用金属有机框架(MOF)在钻石芯片上和钻石芯片上的毛孔,以捕获NV中心附近的样品分子。这使得可以从液体样品中检测NMR信号,而无需限制就无法检测到。这些结果为具有高光谱分辨率的纳米级液相NMR设定了途径。
Atomic-scale magnetic field sensors based on nitrogen vacancy (NV) defects in diamonds are an exciting platform for nanoscale nuclear magnetic resonance (NMR) spectroscopy. The detection of NMR signals from a few zeptoliters to single molecules or even single nuclear spins has been demonstrated using NV-centers close to the diamond surface. However, fast molecular diffusion of sample molecules in and out of nanoscale detection volumes impedes their detection and limits current experiments to solid-state or highly viscous samples. Here, we show that restricting diffusion by confinement enables nanoscale NMR spectroscopy of liquid samples. Our approach uses metal-organic frameworks (MOF) with angstrom-sized pores on a diamond chip to trap sample molecules near the NV-centers. This enables the detection of NMR signals from a liquid sample, which would not be detectable without confinement. These results set the route for nanoscale liquid-phase NMR with high spectral resolution.