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基于整体双楔形棱镜的光谱单分子定位显微镜技术

Monolithic dual-wedge prism-based spectroscopic single-molecule localization microscopy.

作者信息

Song Ki-Hee, Brenner Benjamin, Yeo Wei-Hong, Kweon Junghun, Cai Zhen, Zhang Yang, Lee Youngseop, Yang Xusan, Sun Cheng, Zhang Hao F

机构信息

Department of Biomedical Engineering, Northwestern University, 2145 Sheridan Rd., Evanston, IL, 60208, USA.

Department of Mechanical Engineering, Northwestern University, 2145 Sheridan Rd., Evanston, IL, 60208, USA.

出版信息

Nanophotonics. 2022 Mar;11(8):1527-1535. doi: 10.1515/nanoph-2021-0541. Epub 2022 Jan 21.

Abstract

By manipulating the spectral dispersion of detected photons, spectroscopic single-molecule localization microscopy (sSMLM) permits concurrent high-throughput single-molecular spectroscopic analysis and imaging. Despite its promising potential, using discrete optical components and managing the delicate balance between spectral dispersion and spatial localization compromise its performance, including non-uniform spectral dispersion, high transmission loss of grating, high optical alignment demands, and reduced precision. We designed a dual-wedge prism (DWP)-based monolithic imaging spectrometer to overcome these challenges. We optimized the DWP for spectrally dispersing focused beam without deviation and with minimal wavefront error. We integrated all components into a compact assembly, minimizing total transmission loss and significantly reducing optical alignment requirements. We show the feasibility of DWP using ray-tracing and numerical simulations. We validated our numerical simulations by experimentally imaging individual nanospheres and confirmed that DWP-sSMLM achieved much improved spatial and spectral precisions of grating-based sSMLM. We also demonstrated DWP-sSMLM in 3D multi-color imaging of cells.

摘要

通过操纵检测到的光子的光谱色散,光谱单分子定位显微镜(sSMLM)允许同时进行高通量单分子光谱分析和成像。尽管其具有潜在的应用前景,但使用离散光学元件以及管理光谱色散和空间定位之间的微妙平衡会损害其性能,包括光谱色散不均匀、光栅的高传输损耗、高光学对准要求以及精度降低。我们设计了一种基于双楔形棱镜(DWP)的单片成像光谱仪来克服这些挑战。我们对DWP进行了优化,使其能够在不产生偏差且波前误差最小的情况下对聚焦光束进行光谱色散。我们将所有组件集成到一个紧凑的组件中,将总传输损耗降至最低,并显著降低光学对准要求。我们通过光线追踪和数值模拟展示了DWP的可行性。我们通过对单个纳米球进行实验成像验证了我们的数值模拟,并证实DWP-sSMLM在基于光栅的sSMLM的空间和光谱精度方面有了很大提高。我们还在细胞的三维多色成像中展示了DWP-sSMLM。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8b4c/11501875/80f4f11fec0d/j_nanoph-2021-0541_fig_001.jpg

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