4.6 Article

Photoexcitation and Charge-Transfer-to-Solvent Relaxation Dynamics of the I-(CH3CN) Complex

Journal

JOURNAL OF PHYSICAL CHEMISTRY A
Volume 117, Issue 32, Pages 7595-7605

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/jp403586u

Keywords

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Funding

  1. Natural Sciences and Engineering Research Council (NSERC) of Canada
  2. Concordia University Doctoral Award of Excellence

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Photoexcitation of iodide-acetonitrile clusters, I-(CH3CN)(n), to the charge-transfer-to-solvent (CTTS) state and subsequent duster relaxation could result in the possible formation of cluster analogues of the bulk solvated electron. In this work, the relaxation process of the CTTS excited iodideacetonitrile binary complex, [I-(CH3CN)]*, is investigated using rigorous ab initio quantum chemistry calculations and direct-dynamics simulations to gain insight into the role and motion of iodine and acetonitrile in the relaxation of CTTS excited (I)-(CH3CN). Computed potential energy curves and profiles of the excited electron vertical detachment energy for [I-(CH3CN)]* along the iodine-acetonitrile distance coordinate reveal for the first time significant 3 dispersion effects between iodine and the excited electron, which can have a 0 400 soo 1200 Ism 2000 significant stabilizing effect on the latter. Results of direct-dynamics simulations t to demonstrate that [I-(CH3CN)]* undergoes dissociation to iodine and acetonitrile fragments, resulting in decreased stability of the excited electron. The present work provides strong evidence of solvent translational motion and iodine ejection as key aspects of the early time relaxation of CTTS excited I-(CH3CN) that can also have a substantial impact on the subsequent electron solvation processes and further demonstrates that intricate details of the relaxation process of CTTS excited iodide-polar solvent molecule clusters make it heavily solvent-dependent.

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