论文标题
通过双共振对核自旋的量子杂作传感
Quantum Heterodyne Sensing of Nuclear Spins via Double Resonance
论文作者
论文摘要
纳米级核磁共振(NMR)信号可以通过与顺磁电子传感器自旋的超精细相互作用来测量。杂种方法被广泛用于克服光谱分辨率中的电子自旋寿命极限。它使用了一系列修改的Hahn Echo脉冲序列,该脉冲序列与进动信号相干地应用,从而产生了下采样的NMR信号。由于应用高电子兔频率的挑战,其应用限于低场,因此该方法的全部电势尚未在高磁场上利用,对NMR有益。在这里,我们提出了使用一系列相干电子核双共振感应块的杂作检测,该块将纳米级NMR方案扩展到任意磁场。我们在单个NV中心上演示了这一原理,既有固有的$^{14} $ n和每周耦合的$^{13} $ c核旋转在围绕单个NV中心的浴缸中。我们将我们的协议与现有的杂化协议进行比较,并讨论其前景。这项工作为具有NV中心的高场纳米级杂质NMR方案铺平了道路,这对于减少样品体积和改善化学分辨率至关重要。
Nanoscale nuclear magnetic resonance (NMR) signals can be measured through hyperfine interaction to paramagnetic electron sensor spins. A heterodyne approach is widely used to overcome the electron spin lifetime limit in spectral resolution. It uses a series of modified Hahn echo pulse sequences applied coherently with precession signal resulting in a subsampled NMR signal. Due to challenges with applying high electron Rabi frequencies its application is limited to low fields, thus the full potential of the method is not yet exploited at high magnetic fields, beneficial for NMR. Here we present heterodyne detection utilizing a series of phase coherent electron nuclear double resonance sensing blocks which extends nanoscale NMR protocols to arbitrary magnetic fields. We demonstrate this principle on a single NV center, both with an intrinsic $^{14}$N and a weekly coupled $^{13}$C nuclear spin in the bath surrounding single NV centres. We compare our protocol to existing heterodyne protocols and discuss its prospects. This work paves the way towards high field nanoscale heterodyne NMR protocols with NV centres which is crucial for reducing sample volumes and improving chemical resolution.