Investigation on achieving super-resolution by solid immersion lens based STED microscopy
Author(s) -
Wan-Chin Kim,
Hyungbae Moon,
Won-Sup Lee,
Geon Lim,
Guk-Jong Choi,
Donyoung Kang,
Hyungsuk Lee,
No-Cheol Park
Publication year - 2017
Publication title -
optics express
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.394
H-Index - 271
ISSN - 1094-4087
DOI - 10.1364/oe.25.016629
Subject(s) - sted microscopy , optics , materials science , numerical aperture , microscopy , image resolution , lens (geology) , resolution (logic) , microscope , wavelength , confocal microscopy , biological imaging , fluorescence , stimulated emission , laser , physics , artificial intelligence , computer science
The feasibility of stimulated emission depletion (STED) microscopy using a solid immersion lens was investigated. First, the theoretical feasibility of the considered system is discussed based on a vectorial field algorithm that uses a stratified medium composed of a SIL air-gap and test sample. Using the simulation, we verified that evanescent waves with much higher spatial frequencies corresponding to the high numerical aperture in the air-gap can be utilized to achieve a higher resolution than a confocal fluorescent image without a depletion beam. The simulated expectation was supported by actual imaging on two types of samples: fluorescent beads with a 20 nm diameter and an actin sample with a filamentous structure. The lateral resolution of the system was determined to be 34 nm via the imaging results on the nano-beads. The system was quite promising for achieving nano-scale surface imaging of biological samples; an even higher resolution was achieved by adjusting the wavelength and the intensity of the depletion beam.
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