| Literature DB >> 35873202 |
Ki-Hee Song1, Benjamin Brenner1, Wei-Hong Yeo1, Junghun Kweon1, Zhen Cai1, Yang Zhang1, Youngseop Lee1, Xusan Yang1, Cheng Sun2, Hao F Zhang1.
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.Entities:
Keywords: Single-Molecule Localization Microscopy; Spectroscopy; Super-resolution Fluorescence Imaging
Year: 2022 PMID: 35873202 PMCID: PMC9307059 DOI: 10.1515/nanoph-2021-0541
Source DB: PubMed Journal: Nanophotonics Impact factor: 7.923