Skip to main navigation Skip to search Skip to main content

Ultrafast electronic energy relaxation in a conjugated dendrimer leading to inter-branch energy redistribution

  • D. Ondarse-Alvarez
  • , S. Kömürlü
  • , A. E. Roitberg
  • , G. Pierdominici-Sottile
  • , Sergei Tretiak
  • , S. Fernandez-Alberti
  • , V. D. Kleiman

Research output: Contribution to journalArticlepeer-review

34 Scopus citations

Abstract

Dendrimers are arrays of coupled chromophores, where the energy of each unit depends on its structure and conformation. The light harvesting and energy funneling properties are strongly dependent on their highly branched conjugated architecture. Herein, the photoexcitation and subsequent ultrafast electronic energy relaxation and redistribution of a first generation dendrimer (1) are analyzed combining theoretical and experimental studies. Dendrimer 1 consists of three linear phenylene-ethynylene (PE) units, or branches, attached in the meta position to a central group opening up the possibility of inter-branch energy transfer. Excited state dynamics are explored using both time-resolved spectroscopy and non-adiabatic excited state molecular dynamics simulations. Our results indicate a subpicosecond loss of anisotropy due to an initial excitation into several states with different spatial localizations, followed by exciton self-trapping on different units. This exciton hops between branches. The absence of an energy gradient leads to an ultrafast energy redistribution among isoenergetic chromophore units. At long times we observe similar probabilities for each branch to retain significant contributions of the transition density of the lowest electronic excited-state. The observed unpolarized emission is attributed to the contraction of the electronic wavefunction onto a single branch with frequent interbranch hops, and not to its delocalization over the whole dendrimer.

Original languageEnglish
Pages (from-to)25080-25089
Number of pages10
JournalPhysical Chemistry Chemical Physics
Volume18
Issue number36
DOIs
StatePublished - Jan 1 2016

Fingerprint

Dive into the research topics of 'Ultrafast electronic energy relaxation in a conjugated dendrimer leading to inter-branch energy redistribution'. Together they form a unique fingerprint.

Cite this