Passer à la navigation principale Passer à la recherche Passer au contenu principal

Femtosecond spectral evolution of the excited state of bacterial reaction centers at 10 K

  • INSERM U869
  • Institut Pierre Simon Laplace, CNRS and CEA
  • Massachusetts Institute of Technology

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

Résumé

The femtosecond spectral evolution of reaction centers of Rhodobacter sphaeroides R-26 was studied at 10 K. Transient spectra in the near infrared region, obtained with 45-fs pulses (pump pulses centered at 870 nm and continuum probe pulses), were analyzed with associated kinetics at specific wavelengths. The t = 0-fs transient spectrum is very rich in structure; it contains separate induced bands at 807 and 796 nm and a bleaching near 760 nm, reflecting strong changes in interaction between all pigments upon formation of the excited state. A complex spectral evolution in the 800-nm region, most notably the bleaching of the 796-nm band, takes place within a few hundred femtosecond - i.e., on a time scale much faster than electron transfer from the primary donor P to the bacteriopheophytin acceptor HL. The remarkable initial spectral features and their evolution are presumably related to the presence of HL, as they were not observed in the DLL mutant of Rhodobacter capsulatus, which lacks this pigment. A simple linear reaction scheme with an intermediate state cannot account for our data; the initial spectral evolution must reflect relaxation processes within the excited state. The importance for primary photochemistry of long distance interactions in the reaction center is discussed.

langue originaleAnglais
Pages (de - à)613-617
Nombre de pages5
journalProceedings of the National Academy of Sciences of the United States of America
Volume89
Numéro de publication2
étatPublié - 1 janv. 1992
Modification externeOui

Empreinte digitale

Examiner les sujets de recherche de « Femtosecond spectral evolution of the excited state of bacterial reaction centers at 10 K ». Ensemble, ils forment une empreinte digitale unique.

Contient cette citation