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Synthesis of Bis-β-Diketonate Lanthanide Complexes with an Azobenzene Bridge and Studies of Their Reversible Photo/Thermal Isomerization Properties

[Image: see text] The ligand, bis-β-diketone with an azobenzene bridge (4,4′-(4,4,4-trifluoro-1,3-butanedione)azobenzene, H(2)L), was prepared for the synthesis of a series of dinuclear lanthanide complexes with the formula [Ln(2)L(3)(DMSO)(4)] (Ln = Eu(3+), Gd(3+), Tb(3+), and DMSO = dimethyl sulfo...

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Autores principales: Fu, Cai-Ye, Chen, Lu, Wang, Xuan, Lin, Li-Rong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2019
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6761611/
https://www.ncbi.nlm.nih.gov/pubmed/31572854
http://dx.doi.org/10.1021/acsomega.9b01817
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author Fu, Cai-Ye
Chen, Lu
Wang, Xuan
Lin, Li-Rong
author_facet Fu, Cai-Ye
Chen, Lu
Wang, Xuan
Lin, Li-Rong
author_sort Fu, Cai-Ye
collection PubMed
description [Image: see text] The ligand, bis-β-diketone with an azobenzene bridge (4,4′-(4,4,4-trifluoro-1,3-butanedione)azobenzene, H(2)L), was prepared for the synthesis of a series of dinuclear lanthanide complexes with the formula [Ln(2)L(3)(DMSO)(4)] (Ln = Eu(3+), Gd(3+), Tb(3+), and DMSO = dimethyl sulfoxide). X-ray crystallographic analysis reveals that the three complexes are triple-stranded dinuclear structures formed by three bis-β-diketonate ligands with two lanthanide ions (Ln(3+)). The trans-to-cis photoisomerization rates of the azobenzene group of the three [Ln(2)L(3)(DMSO)(4)] complexes in ethanol and acetonitrile solutions are similar to those of the pure H(2)L ligand and other azobenzene-containing mononuclear lanthanide complexes, but the trans-to-cis quantum yields (Φ(t→c) = 10(–3)) are 1 order of magnitude smaller. The first-order rate constant for the cis-to-trans thermal isomerization at 50 °C of the H(2)L ligand is similar to those of azobenzene derivatives, while those for the [Ln(2)L(3)(DMSO)(4)] complexes (k(iso) = 10(–4) s(–1)) are higher than those of the mononuclear azobenzene-containing lanthanide complexes. Furthermore, as the lanthanide ionic radius becomes smaller from Eu(3+) to Gd(3+) to Tb(3+), the thermal isomerization rate constant decreases and the half-life increases. All these results are proposed to arise from the rigidity at both ends of the azo group by coordination to the dinuclear lanthanide ions and the different isomerization mechanisms. These are the first examples of bis-β-diketonate dinuclear lanthanide complexes with an azobenzene bridge and help illustrate the mechanism of azobenzene isomerization.
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spelling pubmed-67616112019-09-30 Synthesis of Bis-β-Diketonate Lanthanide Complexes with an Azobenzene Bridge and Studies of Their Reversible Photo/Thermal Isomerization Properties Fu, Cai-Ye Chen, Lu Wang, Xuan Lin, Li-Rong ACS Omega [Image: see text] The ligand, bis-β-diketone with an azobenzene bridge (4,4′-(4,4,4-trifluoro-1,3-butanedione)azobenzene, H(2)L), was prepared for the synthesis of a series of dinuclear lanthanide complexes with the formula [Ln(2)L(3)(DMSO)(4)] (Ln = Eu(3+), Gd(3+), Tb(3+), and DMSO = dimethyl sulfoxide). X-ray crystallographic analysis reveals that the three complexes are triple-stranded dinuclear structures formed by three bis-β-diketonate ligands with two lanthanide ions (Ln(3+)). The trans-to-cis photoisomerization rates of the azobenzene group of the three [Ln(2)L(3)(DMSO)(4)] complexes in ethanol and acetonitrile solutions are similar to those of the pure H(2)L ligand and other azobenzene-containing mononuclear lanthanide complexes, but the trans-to-cis quantum yields (Φ(t→c) = 10(–3)) are 1 order of magnitude smaller. The first-order rate constant for the cis-to-trans thermal isomerization at 50 °C of the H(2)L ligand is similar to those of azobenzene derivatives, while those for the [Ln(2)L(3)(DMSO)(4)] complexes (k(iso) = 10(–4) s(–1)) are higher than those of the mononuclear azobenzene-containing lanthanide complexes. Furthermore, as the lanthanide ionic radius becomes smaller from Eu(3+) to Gd(3+) to Tb(3+), the thermal isomerization rate constant decreases and the half-life increases. All these results are proposed to arise from the rigidity at both ends of the azo group by coordination to the dinuclear lanthanide ions and the different isomerization mechanisms. These are the first examples of bis-β-diketonate dinuclear lanthanide complexes with an azobenzene bridge and help illustrate the mechanism of azobenzene isomerization. American Chemical Society 2019-09-09 /pmc/articles/PMC6761611/ /pubmed/31572854 http://dx.doi.org/10.1021/acsomega.9b01817 Text en Copyright © 2019 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Fu, Cai-Ye
Chen, Lu
Wang, Xuan
Lin, Li-Rong
Synthesis of Bis-β-Diketonate Lanthanide Complexes with an Azobenzene Bridge and Studies of Their Reversible Photo/Thermal Isomerization Properties
title Synthesis of Bis-β-Diketonate Lanthanide Complexes with an Azobenzene Bridge and Studies of Their Reversible Photo/Thermal Isomerization Properties
title_full Synthesis of Bis-β-Diketonate Lanthanide Complexes with an Azobenzene Bridge and Studies of Their Reversible Photo/Thermal Isomerization Properties
title_fullStr Synthesis of Bis-β-Diketonate Lanthanide Complexes with an Azobenzene Bridge and Studies of Their Reversible Photo/Thermal Isomerization Properties
title_full_unstemmed Synthesis of Bis-β-Diketonate Lanthanide Complexes with an Azobenzene Bridge and Studies of Their Reversible Photo/Thermal Isomerization Properties
title_short Synthesis of Bis-β-Diketonate Lanthanide Complexes with an Azobenzene Bridge and Studies of Their Reversible Photo/Thermal Isomerization Properties
title_sort synthesis of bis-β-diketonate lanthanide complexes with an azobenzene bridge and studies of their reversible photo/thermal isomerization properties
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6761611/
https://www.ncbi.nlm.nih.gov/pubmed/31572854
http://dx.doi.org/10.1021/acsomega.9b01817
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