4.8 Article

Influence of Solvent Relaxation on Transfer to Solvent

Journal

JOURNAL OF PHYSICAL CHEMISTRY LETTERS
Volume 8, Issue 18, Pages 4516-4521

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.jpclett.7b01956

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Funding

  1. Fonds National Suisse de la Recherche Scientifique [200020-165890]
  2. University of Geneva

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A thorough understanding of the microscopic mechanism of excited-state proton transfer (ESPT) and the influence of the solvent environment on its dynamics are of great fundamental interest. We present here a detailed investigation of an ESPT to solvent (DMSO) using time-resolved broadband fluorescence and transient absorption spectroscopies. All excited-state species are resolved spectrally and kinetically using a global target analysis based on the two-step Eigen-Weller model. Reversibility of the initial shortrange proton transfer producing excited contact ion pairs (CIP*) is observed unambiguously in fluorescence and must be explicitly considered to obtain the individual rate constants. Close inspection of the early dynamics suggests that the relative populations of the protonated form (ROH*) and CIP* are governed by solvent relaxation that influences the relative energies of the excited states. This constitutes a breakdown of the Eigen-Weller model, although the overall agreement between the data and the analysis using classical rate equations is excellent.

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