4.6 Article

Solvation Dynamics at the Air/Water Interface with Time-Resolved Sum-Frequency Generation

Journal

JOURNAL OF PHYSICAL CHEMISTRY C
Volume 114, Issue 41, Pages 17703-17708

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/jp105223j

Keywords

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Funding

  1. National Science Foundation, the Chemical Sciences, Geosciences Riosciences Division, and Office of Basic Energy Sciences, Office of Science, US Department of Energy
  2. DTRA [W911NF-07-1-0116]
  3. National Science Foundation [CHE-07-17518, DRM 02-13774]
  4. Division Of Chemistry
  5. Direct For Mathematical & Physical Scien [717518] Funding Source: National Science Foundation

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The dynamics of molecular solvation at the air/water interface has been monitored with femtosecond time-resolvecl pump-sum frequency generation (TR-SFG), a technique that has been shown to be feasible in the study of ultrafast rotional motions. In the work reported here, the solvation process was monitored by femtosecond photoexcitation of interfacial coumarin 314 (C314) molecules. In these experiments, the SF( signal is brought into a vibrational resonance with the carbonyl symmetric stretch of C314 by tuning the IR pulse to the carbonyl frequency by using a pump-TR-SEG probe. Two solvation time constants were obtained, 230 +/- 40 fs and 2.17 +/- 0.3 ps. These results are the same within experimental error as those measured in time-resolved second-harmonic generation (TR-SHG) experiments. This suggests that the solvent response is due to solvation-induced shifts of the electronic-state energies in the SFG, hyperpolarizability and not significantly to solvation effects on the energy of the carbonyl vibration nor to the strength of the carbonyl vibrational transition moment. In addition, an explanation of the similar solvation dynamics of a newly created on at the air/water interface and in bulk water, which is based On molecular-dynamics simulations (Benjamin, I. J. Chem. Phys. 1991, 95 (5), 3698-3709), could explain the similar solvation dynamics we round for C314. The physical description is that the first solvation shell is essentially die same in hulk water and at the air/water interface.

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