• DocumentCode
    1504938
  • Title

    Tracking Ultrafast Energy Flow in Molecules Using Broadly Tunable Few-Optical-Cycle Pulses

  • Author

    Brida, Daniele ; Manzoni, Cristian ; Cirmi, Giovanni ; Polli, Dario ; Cerullo, Giulio

  • Author_Institution
    Phys. Dept., Politec. di Milano, Milan, Italy
  • Volume
    18
  • Issue
    1
  • fYear
    2012
  • Firstpage
    329
  • Lastpage
    339
  • Abstract
    Many (bio) molecules, following light absorption, undergo ultrafast nonradiative decay processes, taking place over timescales of tens to hundreds of femtoseconds. Ultrafast optical spectroscopy allows tracking in real time this energy flow using broadly tunable few-optical-cycle light pulses. Optical parametric amplifiers, thanks to their broad and tunable gain bandwidths, are powerful tools for the generation of such pulses. This paper first reviews our work on broadband optical parametric amplifiers, which led to the demonstration of few-optical-cycle sub-10-fs pulses continuously tunable from the visible (500 nm) to the near-IR (2 μm). We then present selected examples of applications to ultrafast spectroscopy of molecules, such as isomerization of rhodopsin, carotenoid-bacteriochlorophyll energy transfer in light-harvesting complexes, and polymer-fullerene electron transfer in blends for organic photovoltaics.
  • Keywords
    bioenergy conversion; biological techniques; high-speed optical techniques; infrared spectroscopy; optical parametric amplifiers; visible spectroscopy; biomolecule; broadly tunable few optical cycle light pulse; broadly tunable few optical cycle pulse; carotenoid bacteriochlorophyll energy transfer; light absorption; light harvesting complex; optical parametric amplifier; organic photovoltaic blends; polymer fullerene electron transfer; rhodopsin isomerization; ultrafast energy flow tracking; ultrafast nonradiative decay process; ultrafast optical spectroscopy; ultrafast spectroscopy; wavelength 2 mum; wavelength 500 nm; Bandwidth; Broadband communication; Crystals; Optical frequency conversion; Probes; Ultrafast optics; Femtobiology; few-optical-cycle light pulses; optical parametric amplifiers; ultrafast spectroscopy;
  • fLanguage
    English
  • Journal_Title
    Selected Topics in Quantum Electronics, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    1077-260X
  • Type

    jour

  • DOI
    10.1109/JSTQE.2011.2125782
  • Filename
    5756432