Ultrafast solvation dynamics of an ion in the γ-cyclodextrin cavity: the role of restricted environment

Nandi, Nilashis ; Bagchi, Biman (1996) Ultrafast solvation dynamics of an ion in the γ-cyclodextrin cavity: the role of restricted environment Journal of Physical Chemistry, 100 (33). pp. 13914-13919. ISSN 0022-3654

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Official URL: http://pubs.acs.org/doi/abs/10.1021/jp960134s

Related URL: http://dx.doi.org/10.1021/jp960134s

Abstract

A detailed study of the solvation dynamics of a charged coumarin dye molecule in γ-cyclodextrin/water has been carried out by using two different theoretical approaches. The first approach is based on a multishell continuum model (MSCM). This model predicts the time scales of the dynamics rather well, provided an accurate description of the frequency-dependent dielectric function is supplied. The reason for this rather surprising agreement is 2-fold. First, there is a cancellation of errors, second, the two-zone model mimics the heterogeneous microenvironment surrounding the ion rather well. The second approach is based on the molecular hydrodynamics theory (MHT). In this molecular approach, the solvation dynamics has been studied by restricting the translational motion of the solvent molecules enclosed within the cavity. The results from the molecular theory are also in good agreement with the experimental results. Our study indicates that, in the present case, the restricted environment affects only the long time decay of the solvation time correlation function. The short time dynamics is still governed by the librational (and/or vibrational) modes present in bulk water.

Item Type:Article
Source:Copyright of this article belongs to American Chemical Society.
ID Code:4332
Deposited On:18 Oct 2010 08:53
Last Modified:10 Jan 2011 05:59

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