论文标题
钻石表面工程,用于分子传感的氮气散布中心
Diamond surface engineering for molecular sensing with nitrogen-vacancy centers
论文作者
论文摘要
使用光学上可寻址的原子尺度缺陷(例如Diamond的氮气(NV)中心)的量子传感为化学功能的敏感且高度高度局部的表征提供了新的机会。值得注意的是,近地面缺陷有助于检测钻石晶体外部核或电子旋转产生的微小磁场,例如化学吸附和物理学分子中的微小磁场。然而,临界传感器特性的严重降解,即电荷稳定性和旋转连贯性,靠近表面(<ca。10nm深),将NV中心的承诺受到阻碍。此外,化学科学中的应用需要对靶分子与钻石共价键合的方法,并可以强大控制密度,方向和结合构型。这项前瞻性综述提供了对钻石表面科学和NV中心物理学快速收敛场的调查,突出了它们的量子传感分子的综合潜力。我们概述了对NV感应应用有利的钻石表面特性,并讨论了减轻有害效果的策略,同时提供了化学附着的途径。最后,我们介绍了对新兴应用的前景,在这种应用中,基于NV的感觉的前所未有的灵敏度和空间分辨率可以为单分子水平的化学功能化表面提供独特的见解。
Quantum sensing using optically addressable atomic-scale defects, such as the nitrogen--vacancy (NV) center in diamond, provides new opportunities for sensitive and highly localized characterization of chemical functionality. Notably, near-surface defects facilitate detection of the minute magnetic fields generated by nuclear or electron spins outside of the diamond crystal, such as those in chemisorbed and physisorbed molecules. However, the promise of NV centers is hindered by a severe degradation of critical sensor properties, namely charge stability and spin coherence, near surfaces (< ca. 10 nm deep). Moreover, applications in the chemical sciences require methods for covalent bonding of target molecules to diamond with robust control over density, orientation, and binding configuration. This forward-looking Review provides a survey of the rapidly converging fields of diamond surface science and NV-center physics, highlighting their combined potential for quantum sensing of molecules. We outline the diamond surface properties that are advantageous for NV-sensing applications, and discuss strategies to mitigate deleterious effects while simultaneously providing avenues for chemical attachment. Finally, we present an outlook on emerging applications in which the unprecedented sensitivity and spatial resolution of NV-based sensing could provide unique insight into chemically functionalized surfaces at the single-molecule level.