EMCCD-based spectrally resolved fluorescence correlation spectroscopy
Author(s) -
Felix Bestvater,
Zahir Seghiri,
Moon Sik Kang,
Nadine Gröner,
Ji Young Lee,
KangBin Im,
Malte Wachsmuth
Publication year - 2010
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.18.023818
Subject(s) - fluorescence correlation spectroscopy , optics , spectroscopy , photon counting , fluorescence , spectrometer , photon , fluorescence spectroscopy , confocal , spectral imaging , quantum dot , materials science , microscopy , physics , optoelectronics , quantum mechanics
We present an implementation of fluorescence correlation spectroscopy with spectrally resolved detection based on a combined commercial confocal laser scanning/fluorescence correlation spectroscopy microscope. We have replaced the conventional detection scheme by a prism-based spectrometer and an electron-multiplying charge-coupled device camera used to record the photons. This allows us to read out more than 80,000 full spectra per second with a signal-to-noise ratio and a quantum efficiency high enough to allow single photon counting. We can identify up to four spectrally different quantum dots in vitro and demonstrate that spectrally resolved detection can be used to characterize photophysical properties of fluorophores by measuring the spectral dependence of quantum dot fluorescence emission intermittence. Moreover, we can confirm intracellular cross-correlation results as acquired with a conventional setup and show that spectral flexibility can help to optimize the choice of the detection windows.
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