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An excellent water-stable 3D Zn-MOF with 8-fold interpenetrated diamondoid topology showing “turn-on/turn-off” luminescent detection of Al(3+) and SNT in aqueous media

The effective detection of Al(3+) and antibiotics pollutants is crucial for environmental protection and human health due to their high toxicity and nondegradability, but it is still currently challenging. In this work, a methyl-decorated acylamide-containing dicarboxylate ligand H(2)L was elaborate...

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Autores principales: Gao, Xiuting, Wang, Xiaohe, Feng, Miaomiao, Yang, Ming, Zhang, Qingfu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9042204/
https://www.ncbi.nlm.nih.gov/pubmed/35493581
http://dx.doi.org/10.1039/d1ra06590d
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author Gao, Xiuting
Wang, Xiaohe
Feng, Miaomiao
Yang, Ming
Zhang, Qingfu
author_facet Gao, Xiuting
Wang, Xiaohe
Feng, Miaomiao
Yang, Ming
Zhang, Qingfu
author_sort Gao, Xiuting
collection PubMed
description The effective detection of Al(3+) and antibiotics pollutants is crucial for environmental protection and human health due to their high toxicity and nondegradability, but it is still currently challenging. In this work, a methyl-decorated acylamide-containing dicarboxylate ligand H(2)L was elaborately designed and successfully synthesized, which was further employed to react with Zn(ii) ions and dpe ligands to construct a new luminescent Zn-MOF, namely {[Zn(L)(dpe)]·DMF·3H(2)O}(n) (1). X-ray crystallography reveals that MOF 1 is a 3D 8-fold [4 + 4] interpenetrated diamondoid framework with isolated DMF and water molecules in the pores, in which the uncoordinated acylamide groups are found and facilitate the Zn-MOF to recognize analyte molecules. The activated solvent-free MOF sample (denoted as 1a) exhibits excellent water stability and good luminescent performance. The luminescence sensing experiments show that 1a could behave as a bi-responsive chemical sensor for “turn-on” and “turn-off” luminescent detection of Al(3+) and SNT in aqueous media, respectively. The sensing mechanisms have also been discussed. Furthermore, MOF 1a was successfully applied to the effective determination of Al(3+) and SNT in real water samples. This represents, to our knowledge, the first example of a MOF material for “turn-on” and “turn-off” luminescent detection of Al(3+) and SNT in water, which will promote the practical application of water-stable luminescent MOF sensors in monitoring metal ions and antibiotics pollutants in the environmental water matrices.
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spelling pubmed-90422042022-04-28 An excellent water-stable 3D Zn-MOF with 8-fold interpenetrated diamondoid topology showing “turn-on/turn-off” luminescent detection of Al(3+) and SNT in aqueous media Gao, Xiuting Wang, Xiaohe Feng, Miaomiao Yang, Ming Zhang, Qingfu RSC Adv Chemistry The effective detection of Al(3+) and antibiotics pollutants is crucial for environmental protection and human health due to their high toxicity and nondegradability, but it is still currently challenging. In this work, a methyl-decorated acylamide-containing dicarboxylate ligand H(2)L was elaborately designed and successfully synthesized, which was further employed to react with Zn(ii) ions and dpe ligands to construct a new luminescent Zn-MOF, namely {[Zn(L)(dpe)]·DMF·3H(2)O}(n) (1). X-ray crystallography reveals that MOF 1 is a 3D 8-fold [4 + 4] interpenetrated diamondoid framework with isolated DMF and water molecules in the pores, in which the uncoordinated acylamide groups are found and facilitate the Zn-MOF to recognize analyte molecules. The activated solvent-free MOF sample (denoted as 1a) exhibits excellent water stability and good luminescent performance. The luminescence sensing experiments show that 1a could behave as a bi-responsive chemical sensor for “turn-on” and “turn-off” luminescent detection of Al(3+) and SNT in aqueous media, respectively. The sensing mechanisms have also been discussed. Furthermore, MOF 1a was successfully applied to the effective determination of Al(3+) and SNT in real water samples. This represents, to our knowledge, the first example of a MOF material for “turn-on” and “turn-off” luminescent detection of Al(3+) and SNT in water, which will promote the practical application of water-stable luminescent MOF sensors in monitoring metal ions and antibiotics pollutants in the environmental water matrices. The Royal Society of Chemistry 2021-11-11 /pmc/articles/PMC9042204/ /pubmed/35493581 http://dx.doi.org/10.1039/d1ra06590d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Gao, Xiuting
Wang, Xiaohe
Feng, Miaomiao
Yang, Ming
Zhang, Qingfu
An excellent water-stable 3D Zn-MOF with 8-fold interpenetrated diamondoid topology showing “turn-on/turn-off” luminescent detection of Al(3+) and SNT in aqueous media
title An excellent water-stable 3D Zn-MOF with 8-fold interpenetrated diamondoid topology showing “turn-on/turn-off” luminescent detection of Al(3+) and SNT in aqueous media
title_full An excellent water-stable 3D Zn-MOF with 8-fold interpenetrated diamondoid topology showing “turn-on/turn-off” luminescent detection of Al(3+) and SNT in aqueous media
title_fullStr An excellent water-stable 3D Zn-MOF with 8-fold interpenetrated diamondoid topology showing “turn-on/turn-off” luminescent detection of Al(3+) and SNT in aqueous media
title_full_unstemmed An excellent water-stable 3D Zn-MOF with 8-fold interpenetrated diamondoid topology showing “turn-on/turn-off” luminescent detection of Al(3+) and SNT in aqueous media
title_short An excellent water-stable 3D Zn-MOF with 8-fold interpenetrated diamondoid topology showing “turn-on/turn-off” luminescent detection of Al(3+) and SNT in aqueous media
title_sort excellent water-stable 3d zn-mof with 8-fold interpenetrated diamondoid topology showing “turn-on/turn-off” luminescent detection of al(3+) and snt in aqueous media
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9042204/
https://www.ncbi.nlm.nih.gov/pubmed/35493581
http://dx.doi.org/10.1039/d1ra06590d
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