کد مقاله | کد نشریه | سال انتشار | مقاله انگلیسی | نسخه تمام متن |
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608995 | 880612 | 2011 | 11 صفحه PDF | دانلود رایگان |

The present work demonstrates the effect of β-cyclodextrin (β-CD) nanocaging on the photophysical properties of Excited-State Intramolecular Proton Transfer (ESIPT) probe 3,5,6-trichlorosalicylic acid (TCSA) through steady-state absorption, emission and time-resolved emission spectroscopy. The remarkable enhancement of tautomer (proton transferred form) emission of TCSA as a result of inclusion complex formation with β-CD has been argued to be principally due to retardation of radiationless decay channels within the encapsulated state. A quantitative assessment of the emission intensity data on Benesi–Hildebrand equation reveals a 1:1 stoichiometry for TCSA:β-CD complex. The steady-state anisotropy, REES, and time-resolved fluorescence decay measurements are consistent with other experimental findings. Additionally, chaotrope (urea)-induced perturbation of the phenomenon of host–guest inclusion complex formation has been elucidated for a series of urea concentration. The present findings have been interpreted on the basis of the hydrophobic interaction mechanism of urea, rather than water 3-D structure rupture. The data unravel that the perturbation of solvation of the β-CD receptor is not important in the presence of urea, while the hydrophobic interaction with free probe molecules could be instrumental behind the observed lowering of TCSA:β-CD binding strength in the presence of urea.
This article describes the modification of ESIPT reaction of 3,5,6-trichlorosalicylic acid (TCSA) inside the nanocage of β-cyclodextrin. Urea induced perturbation of binding interaction has been explored in term of hydrophobic interaction mechanism.Figure optionsDownload high-quality image (69 K)Download as PowerPoint slideResearch highlights
► Modulation of ESIPT reaction of 3,5,6-trichlorosalicylic acid (TCSA) within β-cyclodextrin nanocavity have been investigated spectroscopically.
► Appreciable enhancement of ESIPT emission and motional restriction on the probe within β-CD encapsulated state has been demonstrated in this study.
► Chaotrope urea induced lowering of probe-β-CD binding interaction has been explored in term of hydrophobic interaction mechanism.
Journal: Journal of Colloid and Interface Science - Volume 353, Issue 1, 1 January 2011, Pages 237–247