Title :
Femtosecond fluorescence signatures of bacteriorhodopsin and proteorhodopsin
Author :
Sobotta, Constanze ; Schmidt, Bernhard ; Heinz, Bjorn ; Laimgruber, Stefan ; Braun, Markus ; Gilch, Peter ; Wachtveitl, Josef ; Zinth, Wolfgang
Author_Institution :
Sektion Phys., Ludwig-Maximilians-Univ., Munchen, Germany
Abstract :
The primary dynamics in the excited state of light-driven proton pumps, bacteriorhodopsin and proteorhodopsin, were probed using time resolved fluorescence spectroscopy in the spectral range 550 to 850 nm with a temporal resolution of 150 fs. At low excitation densities, the fluorescence spectra feature a dynamic Stokes shift occurring on a timescale of 0.2 ps which is indicative of a fast rearrangement on the reactive potential energy surface. The fluorescence dynamics of BR can be approximated biexponentially with time constants of <150 fs and 0.45 ps for the approximation of the PR fluorescence three time constants of <150 fs, 0.45 ps, and 4 ps are necessary. The appearance of a third time constant in PR can be associated with a spectroscopically dark intermediate state. For high excitation densities substantial changes of the fluorescence dynamics of BR were observed: (i) the amplitude of the fastest time constant (< 0.15 ps) strongly increases with increasing excitation density, (ii) the decay time of the second time constant increases from 0.45 ps to 0.7 ps with increasing excitation density.
Keywords :
fluorescence; high-speed integrated circuits; molecular biophysics; proteins; spectral line shift; time resolved spectra; 0.2 ps; 0.45 ps; 150 fs; 4 ps; 7 ps; bacteriorhodopsin; dynamic Stokes shift; excitation density; excited state; femtosecond fluorescence signatures; fluorescence dynamics; fluorescence spectra; light-driven proton pumps; primary dynamics; proteorhodopsin; reactive potential energy surface; spectroscopically dark intermediate state; time constant; time resolved fluorescence spectroscopy; Biomembranes; Energy resolution; Fluorescence; Laser excitation; Microorganisms; Probes; Protons; Retina; Solar energy; Spectroscopy;
Conference_Titel :
Quantum Electronics Conference, 2005. EQEC '05. European
Print_ISBN :
0-7803-8973-5
DOI :
10.1109/EQEC.2005.1567356