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A Light‐Controlled Release System Based on Molecular Recognition of Cyclodextrins
Author(s) -
Lee Isaac Eng Ting,
Hashidzume Akihito,
Harada Akira
Publication year - 2015
Publication title -
macromolecular rapid communications
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.348
H-Index - 154
eISSN - 1521-3927
pISSN - 1022-1336
DOI - 10.1002/marc.201500389
Subject(s) - cyclodextrin , azobenzene , aqueous solution , ternary operation , residue (chemistry) , chemistry , acryloyl chloride , irradiation , molecular recognition , sodium , acrylate , polymer chemistry , nuclear chemistry , photochemistry , organic chemistry , molecule , copolymer , polymer , physics , computer science , nuclear physics , programming language
This Communication describes a new light‐controlled release system based on molecular recognition of cyclodextrins. Azobenzene (Azo) residue is employed as a photoresponsive guest residue because it can switch the partner from α‐cyclodextrin (αCD) to β‐cyclodextrin (βCD) by irradiation with UV light. Poly(sodium acrylate)s possessing αCD, βCD, and Azo residues (pAαCD, pAβCD, and pAAzo, respectively) are mixed in aqueous solutions to form aggregates through the formation of inclusion complexes of Azo with αCD and/or βCD. A chemical cargo, 1‐pyrenemethylammonium chloride (PyMA), is contained in the aggregates, and its release behavior is investigated by dialysis experiments under UV irradiation. These data indicate that the amount of PyMA released for the pAαCD/pAβCD/pAAzo ternary mixture is approximately three times as high as those for the pAαCD/pAAzo and pAβCD/pAAzo binary mixtures because of the light‐controlled rearrangement of inclusion complexes.

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