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High-throughput nitrogen-vacancy center imaging for nanodiamond photophysical characterization and pH nanosensing

机译:高通量氮-空位中心成像金刚石的物理特性和pH值nanosensing

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The fluorescent nitrogen-vacancy (NV) defect in diamond has remarkable photophysical properties, including high photostability which allows stable fluorescence emission for hours; as a result, there has been much interest in using nanodiamonds (NDs) for applications in quantum optics and biological imaging. Such applications have been limited by the heterogeneity of NDs and our limited understanding of NV photophysics in NDs, which is partially due to the lack of sensitive and high-throughput methods for photophysical analysis of NDs. Here, we report a systematic analysis of NDs using two-color wide-field epifluorescence imaging coupled to high-throughput single-particle detection of single NVs in NDs with sizes down to 5-10 nm. By using fluorescence intensity ratios, we observe directly the charge conversion of single NV center (NV- or NV0) and measure the lifetimes of different NV charge states in NDs. We also show that we can use changes in pH to control the main NV charge states in a direct and reversible fashion, a discovery that paves the way for performing pH nanosensing with a non-photobleachable probe.
机译:荧光氮-空位(NV)的缺陷钻石有显著的光物理性质,包括高耐光性,允许稳定荧光发射数小时;有很多使用的兴趣在量子纳米金刚石(NDs)应用程序光学和生物成像。已经被NDs的异质性和有限我们有限的理解NV photophysics,这部分是由于缺乏敏感和高通量的方法的物理分析。系统分析使用的双色的广角影像数字化的耦合高通量单粒子检测单一NVs NDs的大小5 - 10纳米。使用荧光强度比率,我们观察直接单NV的电荷转换中心(NV -或NV0)和测量的一生在NDs不同NV电荷状态。我们可以使用pH值控制主要的变化NV电荷状态直接和可逆的时尚,这一发现铺平了道路执行nanosensing与pH值non-photobleachable调查。

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