Logo Logo
Hilfe
Hilfe
Switch Language to English

Schedlbauer, J.; Wilhelm, P.; Grabenhorst, L.; Federl, M. E.; Lalkens, B.; Hinderer, F.; Scherf, U.; Hoeger, S.; Tinnefeld, P.; Bange, S.; Vogelsang, J. und Lupton, J. M. (2020): Ultrafast Single-Molecule Fluorescence Measured by Femtosecond Double-Pulse Excitation Photon Antibunching. In: Nano Letters, Bd. 20, Nr. 2: S. 1074-1079

Volltext auf 'Open Access LMU' nicht verfügbar.

Abstract

Most measurements of fluorescence lifetimes on the single-molecule level are carried out using avalanche photon diodes (APDs). These single-photon counters are inherently slow, and their response shows a strong dependence on photon energy, which can make reconvolution of the instrument response function (IRF) challenging. An ultrafast time resolution in single-molecule fluorescence is crucial, e.g., in determining donor lifetimes in donor-acceptor couples which undergo energy transfer, or in plasmonic antenna structures, where the radiative rate and non-radiative rates are enhanced. We introduce a femtosecond double-excitation (FeDEx) photon correlation technique, which measures the degree of photon antibunching as a function of time delay between two excitation pulses. In this boxcar integration, the time resolution of fluorescence transients is limited solely by the laser pulse length and is independent of the detector IRF. The versatility of the technique is demonstrated with a custom-made donor-acceptor complex with one donor and two acceptors and with single dye molecules positioned accurately between two gold nanoparticles using DNA origami. The latter structures show , similar to 75-fold radiative-rate enhancement and fluorescence lifetimes down to 19 ps, which is measured without the need for any reconvolution. With the potential of measuring subpicosecond fluorescence lifetimes, plasmonic antenna structures can now be optimized further.

Dokument bearbeiten Dokument bearbeiten