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Covalent organic frameworks as micro-reactors: confinement-enhanced electrochemiluminescence

Electrochemiluminescence (ECL) micro-reactors with enhanced intensity and extreme stability were first established by the assembly of tris(2,2′-bipyridyl) ruthenium(ii) (Ru(bpy)(3)(2+)) onto covalent organic frameworks (COFs), in which a type of imine-linked COF (denoted as COF-LZU1) was employed as...

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Autores principales: Zeng, Wei-Jia, Wang, Kun, Liang, Wen-Bin, Chai, Ya-Qin, Yuan, Ruo, Zhuo, Ying
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8159293/
https://www.ncbi.nlm.nih.gov/pubmed/34094067
http://dx.doi.org/10.1039/d0sc01817a
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author Zeng, Wei-Jia
Wang, Kun
Liang, Wen-Bin
Chai, Ya-Qin
Yuan, Ruo
Zhuo, Ying
author_facet Zeng, Wei-Jia
Wang, Kun
Liang, Wen-Bin
Chai, Ya-Qin
Yuan, Ruo
Zhuo, Ying
author_sort Zeng, Wei-Jia
collection PubMed
description Electrochemiluminescence (ECL) micro-reactors with enhanced intensity and extreme stability were first established by the assembly of tris(2,2′-bipyridyl) ruthenium(ii) (Ru(bpy)(3)(2+)) onto covalent organic frameworks (COFs), in which a type of imine-linked COF (denoted as COF-LZU1) was employed as a model for ECL micro-reactors. Compared with the dominant ECL system of Ru(bpy)(3)(2+)/tri-n-propylamine (TPrA) (TPrA as a co-reactant), the intensity of the COF-LZU1 micro-reactor-based electrode was significantly increased nearly 5-fold under the same experimental conditions, which is unprecedented in other Ru(bpy)(3)(2+)-based ECL systems. This enhancement can be attributed to the large surface area, delimited space, and stable and hydrophobic porous structure of COF-LZU1, which not only enabled a huge amount of Ru(bpy)(3)(2+) to be loaded in/on COF-LZU1, but also enriched a large amount of TPrA from the aqueous solution into its inner hydrophobic cavity due to the lipophilicity of TPrA. More importantly, with its hydrophobic porous nanochannels, COF-LZU1 could act as micro-reactors to provide a delimited reaction micro-environment for the electrochemical oxidation of TPrA and the survival of TPrA˙, achieving significant confinement-enhanced ECL. To prove this principle, these Ru@COF-LZU1 micro-reactors were developed to prepare an ECL aptasensor for aflatoxin M1 (AFM1) detection with a wide detection range and a low detection limit. Overall, this work is the first report in which ECL micro-reactors are constructed with COFs to enhance the intensity and stability of the Ru(bpy)(3)(2+)-based ECL system, and opens a new route to the design of other ECL micro-reactors for bioanalysis applications.
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spelling pubmed-81592932021-06-04 Covalent organic frameworks as micro-reactors: confinement-enhanced electrochemiluminescence Zeng, Wei-Jia Wang, Kun Liang, Wen-Bin Chai, Ya-Qin Yuan, Ruo Zhuo, Ying Chem Sci Chemistry Electrochemiluminescence (ECL) micro-reactors with enhanced intensity and extreme stability were first established by the assembly of tris(2,2′-bipyridyl) ruthenium(ii) (Ru(bpy)(3)(2+)) onto covalent organic frameworks (COFs), in which a type of imine-linked COF (denoted as COF-LZU1) was employed as a model for ECL micro-reactors. Compared with the dominant ECL system of Ru(bpy)(3)(2+)/tri-n-propylamine (TPrA) (TPrA as a co-reactant), the intensity of the COF-LZU1 micro-reactor-based electrode was significantly increased nearly 5-fold under the same experimental conditions, which is unprecedented in other Ru(bpy)(3)(2+)-based ECL systems. This enhancement can be attributed to the large surface area, delimited space, and stable and hydrophobic porous structure of COF-LZU1, which not only enabled a huge amount of Ru(bpy)(3)(2+) to be loaded in/on COF-LZU1, but also enriched a large amount of TPrA from the aqueous solution into its inner hydrophobic cavity due to the lipophilicity of TPrA. More importantly, with its hydrophobic porous nanochannels, COF-LZU1 could act as micro-reactors to provide a delimited reaction micro-environment for the electrochemical oxidation of TPrA and the survival of TPrA˙, achieving significant confinement-enhanced ECL. To prove this principle, these Ru@COF-LZU1 micro-reactors were developed to prepare an ECL aptasensor for aflatoxin M1 (AFM1) detection with a wide detection range and a low detection limit. Overall, this work is the first report in which ECL micro-reactors are constructed with COFs to enhance the intensity and stability of the Ru(bpy)(3)(2+)-based ECL system, and opens a new route to the design of other ECL micro-reactors for bioanalysis applications. The Royal Society of Chemistry 2020-04-30 /pmc/articles/PMC8159293/ /pubmed/34094067 http://dx.doi.org/10.1039/d0sc01817a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Zeng, Wei-Jia
Wang, Kun
Liang, Wen-Bin
Chai, Ya-Qin
Yuan, Ruo
Zhuo, Ying
Covalent organic frameworks as micro-reactors: confinement-enhanced electrochemiluminescence
title Covalent organic frameworks as micro-reactors: confinement-enhanced electrochemiluminescence
title_full Covalent organic frameworks as micro-reactors: confinement-enhanced electrochemiluminescence
title_fullStr Covalent organic frameworks as micro-reactors: confinement-enhanced electrochemiluminescence
title_full_unstemmed Covalent organic frameworks as micro-reactors: confinement-enhanced electrochemiluminescence
title_short Covalent organic frameworks as micro-reactors: confinement-enhanced electrochemiluminescence
title_sort covalent organic frameworks as micro-reactors: confinement-enhanced electrochemiluminescence
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8159293/
https://www.ncbi.nlm.nih.gov/pubmed/34094067
http://dx.doi.org/10.1039/d0sc01817a
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