论文标题

钻石各个颜色中心的超分辨率通风盘显微镜

Super-resolution Airy disk microscopy of individual color centers in diamond

论文作者

Gardill, A., Kemeny, I., Li, Y., Zahedian, M., Cambria, M. C., Xu, X., Lordi, V., Gali, Á., Maze, J. R., Choy, J. T., Kolkowitz, S.

论文摘要

超分辨率成像技术使物理,生物学和化学等领域的纳米级显微镜能够。但是,许多超分辨率技术都需要专门的光学组件,例如螺旋相掩码。我们提出了一种新型技术,超分辨率的通风显微镜(SAM),该磁盘显微镜(SAM)可在没有任何专门光学器件的情况下用于标准共聚焦显微镜。我们证明了这一技术与基态耗竭结合,以在衍射极限以下的散装钻石中形象和控制氮呈(NV)中心。与衍射极限相比,分辨率的提高了14倍以上,对应于1.3 Na显微镜的空间分辨率为16.9(8)nm,均为589 nm光。我们利用增强的空间分辨率来控制彼此相互分离的单个NV中心的旋转状态,而不是衍射极限,包括分享相同的方向,与常规电子自旋谐振测量相同。

Super-resolution imaging techniques enable nanoscale microscopy in fields such as physics, biology, and chemistry. However, many super-resolution techniques require specialized optical components, such as a helical-phase mask. We present a novel technique, Super-resolution Airy disk Microscopy (SAM) that can be used in a standard confocal microscope without any specialized optics. We demonstrate this technique, in combination with ground state depletion, to image and control nitrogen-vacancy (NV) centers in bulk diamond below the diffraction limit. A greater than 14-fold improvement in resolution compared to the diffraction limit is achieved, corresponding to a spatial resolution of 16.9(8) nm for a 1.3 NA microscope with 589 nm light. We make use of our enhanced spatial resolution to control the spins states of individual NV centers separated from each other by less than the diffraction limit, including pairs sharing the same orientation that are indistinguishable with a conventional electron spin resonance measurement.

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