Three-dimensional single-molecule localization with nanometer accuracy using Metal-Induced Energy Transfer (MIET) imaging

2018-05-28 | journal article

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​Three-dimensional single-molecule localization with nanometer accuracy using Metal-Induced Energy Transfer (MIET) imaging​
Karedla, N.; Chizhik, A. M. ; Stein, S. C; Ruhlandt, D.; Gregor, I. ; Chizhik, A. I.   & Enderlein, J. ​ (2018) 
The Journal of Chemical Physics148(20) art. 204201​.​ DOI: https://doi.org/10.1063/1.5027074 

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Authors
Karedla, Narain; Chizhik, Anna M. ; Stein, Simon C; Ruhlandt, Daja; Gregor, Ingo ; Chizhik, Alexey I. ; Enderlein, Jörg 
Abstract
Our paper presents the first theoretical and experimental study using single-molecule Metal-Induced Energy Transfer (smMIET) for localizing single fluorescent molecules in three dimensions. Metal-Induced Energy Transfer describes the resonant energy transfer from the excited state of a fluorescent emitter to surface plasmons in a metal nanostructure. This energy transfer is strongly distance-dependent and can be used to localize an emitter along one dimension. We have used Metal-Induced Energy Transfer in the past for localizing fluorescent emitters with nanometer accuracy along the optical axis of a microscope. The combination of smMIET with single-molecule localization based super-resolution microscopy that provides nanometer lateral localization accuracy offers the prospect of achieving isotropic nanometer localization accuracy in all three spatial dimensions. We give a thorough theoretical explanation and analysis of smMIET, describe its experimental requirements, also in its combination with lateral single-molecule localization techniques, and present first proof-of-principle experiments using dye molecules immobilized on top of a silica spacer, and of dye molecules embedded in thin polymer films.
Issue Date
28-May-2018
Journal
The Journal of Chemical Physics 
ISSN
0021-9606
eISSN
1089-7690
Language
English

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