Supramolecular effects in dendritic systems containing photoactive groups

In this article are described dendritic structures containing photoactive groups at the surface or in the core. The observed supramolecular effects can be attributed to the nature of the photoactive group and their location in the dendritic architecture. The peripheric azobenzene groups in these den...

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Main Author: GIANLUCA CAMILLO AZZELLINI
Format: Article
Language:English
Published: Academia Brasileira de Ciências 2000-03-01
Series:Anais da Academia Brasileira de Ciências
Subjects:
Online Access:http://www.scielo.br/scielo.php?script=sci_arttext&pid=S0001-37652000000100004
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spelling doaj-351f67f00ebb43458d714858e5b6d2ff2020-11-25T00:59:47ZengAcademia Brasileira de CiênciasAnais da Academia Brasileira de Ciências0001-37651678-26902000-03-01721333810.1590/S0001-37652000000100004Supramolecular effects in dendritic systems containing photoactive groupsGIANLUCA CAMILLO AZZELLINIIn this article are described dendritic structures containing photoactive groups at the surface or in the core. The observed supramolecular effects can be attributed to the nature of the photoactive group and their location in the dendritic architecture. The peripheric azobenzene groups in these dendrimeric compounds can be regarded as single residues that retain the spectroscopic and photochemical properties of free azobenzene moiety. The E and Z forms of higher generation dendrimer, functionalized with azobenzene groups, show different host ability towards eosin dye, suggesting the possibility of using such dendrimer in photocontrolled host-guest systems. The photophysical properties of many dendritic-bipyridine ruthenium complexes have been investigated. Particularly in aerated medium more intense emission and a longer excited-state lifetime are observed as compared to the parent unsubstituted bipyridine ruthenium complexes. These differences can be attributed to a shielding effect towards dioxygen quenching originated by the dendritic branches.http://www.scielo.br/scielo.php?script=sci_arttext&pid=S0001-37652000000100004Supramolecular PhotochemistryDendrimersAzobenzeneRuthenium Complexes
collection DOAJ
language English
format Article
sources DOAJ
author GIANLUCA CAMILLO AZZELLINI
spellingShingle GIANLUCA CAMILLO AZZELLINI
Supramolecular effects in dendritic systems containing photoactive groups
Anais da Academia Brasileira de Ciências
Supramolecular Photochemistry
Dendrimers
Azobenzene
Ruthenium Complexes
author_facet GIANLUCA CAMILLO AZZELLINI
author_sort GIANLUCA CAMILLO AZZELLINI
title Supramolecular effects in dendritic systems containing photoactive groups
title_short Supramolecular effects in dendritic systems containing photoactive groups
title_full Supramolecular effects in dendritic systems containing photoactive groups
title_fullStr Supramolecular effects in dendritic systems containing photoactive groups
title_full_unstemmed Supramolecular effects in dendritic systems containing photoactive groups
title_sort supramolecular effects in dendritic systems containing photoactive groups
publisher Academia Brasileira de Ciências
series Anais da Academia Brasileira de Ciências
issn 0001-3765
1678-2690
publishDate 2000-03-01
description In this article are described dendritic structures containing photoactive groups at the surface or in the core. The observed supramolecular effects can be attributed to the nature of the photoactive group and their location in the dendritic architecture. The peripheric azobenzene groups in these dendrimeric compounds can be regarded as single residues that retain the spectroscopic and photochemical properties of free azobenzene moiety. The E and Z forms of higher generation dendrimer, functionalized with azobenzene groups, show different host ability towards eosin dye, suggesting the possibility of using such dendrimer in photocontrolled host-guest systems. The photophysical properties of many dendritic-bipyridine ruthenium complexes have been investigated. Particularly in aerated medium more intense emission and a longer excited-state lifetime are observed as compared to the parent unsubstituted bipyridine ruthenium complexes. These differences can be attributed to a shielding effect towards dioxygen quenching originated by the dendritic branches.
topic Supramolecular Photochemistry
Dendrimers
Azobenzene
Ruthenium Complexes
url http://www.scielo.br/scielo.php?script=sci_arttext&pid=S0001-37652000000100004
work_keys_str_mv AT gianlucacamilloazzellini supramoleculareffectsindendriticsystemscontainingphotoactivegroups
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