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纳米金刚石色心的光谱发光控制实现多层次光学标记。

Multilevel Optical Labeling by Spectral Luminescence Control in Nanodiamond Color Centers.

机构信息

Graduate Institute of Applied Physics, Nation Taiwan University, 106 Taipei, Taiwan.

Department of Physics, Nation Taiwan University, Taipei 106, Taiwan.

出版信息

ACS Appl Mater Interfaces. 2020 Oct 28;12(43):49006-49011. doi: 10.1021/acsami.0c16228. Epub 2020 Oct 16.

DOI:10.1021/acsami.0c16228
PMID:33064459
Abstract

Distinguishing a multitude of optical labels is crucial to improving the spatial and temporal resolution of bioimaging. However, current multicolor imaging approaches are limited by the spectral overlap of employed fluorophores. We here discern different instances of a single optical label type through their emission intensity. Such multilevel optical labels are enabled by an optical writing process that permanently modifies their spectral response in a predictable manner and by a separate spectral feature that serves as normalization in the presence of sample variability. The proposed approach was realized by independently controlling the emission properties of highly functionalized fluorescent nanodiamond. Upon laser irradiation, the contribution of the spectral region associated with the N3 color center decreases in a predictable and permanent fashion, while the nitrogen vacancy (NV) emission remains stable. This selective photobleaching of N3 centers was found to originate from a two-photon-assisted dissociation process that results in a 10 higher mobility of photoexcited carriers in N3 centers compared to NV. The resulting write once read many (WORM) memory exhibits multiple distinct memory levels that can be stored and read out with high robustness and reproducibility. The potential of our approach was demonstrated by characterizing markers in HeLa cells with high fidelity, despite the complex emission background. Finally, direct manipulation of label information inside of cells was demonstrated, opening up new routes in advanced bioimaging.

摘要

区分大量光学标签对于提高生物成像的空间和时间分辨率至关重要。然而,当前的多色成像方法受到所使用荧光团的光谱重叠的限制。我们通过它们的发射强度来区分单一光学标签类型的不同实例。这种多级光学标签通过光学写入过程实现,该过程以可预测的方式永久改变其光谱响应,并且具有单独的光谱特征,在存在样品变化时用作归一化。该方法通过独立控制高度功能化荧光纳米金刚石的发射特性来实现。在激光照射下,与 N3 色心相关的光谱区域的贡献以可预测且永久的方式降低,而氮空位 (NV) 发射保持稳定。这种 N3 中心的选择性光漂白被发现源于双光子辅助解离过程,该过程导致 N3 中心中光激发载流子的迁移率比 NV 高 10 倍。由此产生的一次写入多次读取 (WORM) 存储器具有多个可存储和读取的独特存储级别,具有高稳健性和可重复性。尽管存在复杂的发射背景,我们的方法仍通过对 HeLa 细胞中的标记物进行高保真度的表征证明了其潜力。最后,直接在细胞内部操纵标签信息,为高级生物成像开辟了新途径。

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