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Design of Nanostructured Hybrid Electrodes Based on a Liquid Crystalline Zn(II) Coordination Complex-Carbon Nanotubes Composition for the Specific Electrochemical Sensing of Uric Acid

A metallomesogen based on an Zn(II) coordination complex was employed as precursor to obtain a complex matrix nanoplatform for the fabrication of a high-performance electrochemical hybrid sensor. Three representative paste electrodes, which differ by the weight ratio between Zn(II) metallomesogen an...

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Autores principales: Negrea, Sorina, Andelescu, Adelina A., Ilies (b. Motoc), Sorina, Cretu, Carmen, Cseh, Liliana, Rastei, Mircea, Donnio, Bertrand, Szerb, Elisabeta I., Manea, Florica
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9739524/
https://www.ncbi.nlm.nih.gov/pubmed/36500838
http://dx.doi.org/10.3390/nano12234215
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author Negrea, Sorina
Andelescu, Adelina A.
Ilies (b. Motoc), Sorina
Cretu, Carmen
Cseh, Liliana
Rastei, Mircea
Donnio, Bertrand
Szerb, Elisabeta I.
Manea, Florica
author_facet Negrea, Sorina
Andelescu, Adelina A.
Ilies (b. Motoc), Sorina
Cretu, Carmen
Cseh, Liliana
Rastei, Mircea
Donnio, Bertrand
Szerb, Elisabeta I.
Manea, Florica
author_sort Negrea, Sorina
collection PubMed
description A metallomesogen based on an Zn(II) coordination complex was employed as precursor to obtain a complex matrix nanoplatform for the fabrication of a high-performance electrochemical hybrid sensor. Three representative paste electrodes, which differ by the weight ratio between Zn(II) metallomesogen and carbon nanotubes (CNT), i.e., PE_01, PE_02 and PE_03, were obtained by mixing the materials in different amounts. The composition with the largest amount of CNT with respect to Zn complex, i.e., PE_03, gives the best electrochemical signal for uric acid detection by cyclic voltammetry in an alkaline medium. The amphiphilic structure of the Zn(II) coordination complex likely induces a regular separation between the metal centers favoring the redox system through their reduction, followed by stripping, and is characterized by enhanced electrocatalytic activity towards uric acid oxidation. The comparative detection of uric acid between the PE_03 paste electrode and the commercial zinc electrode demonstrated the superiority of the former, and its great potential for the development of advanced electrochemical detection of uric acid. Advanced electrochemical techniques, such as differential-pulsed voltammetry (DPV) and square-wave voltammetry (SWV), allowed for the highly sensitive detection of uric acid in aqueous alkaline solutions. In addition, a good and fast amperometric signal for uric acid detection was achieved by multiple-pulsed amperometry, which was validated by urine analysis.
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spelling pubmed-97395242022-12-11 Design of Nanostructured Hybrid Electrodes Based on a Liquid Crystalline Zn(II) Coordination Complex-Carbon Nanotubes Composition for the Specific Electrochemical Sensing of Uric Acid Negrea, Sorina Andelescu, Adelina A. Ilies (b. Motoc), Sorina Cretu, Carmen Cseh, Liliana Rastei, Mircea Donnio, Bertrand Szerb, Elisabeta I. Manea, Florica Nanomaterials (Basel) Article A metallomesogen based on an Zn(II) coordination complex was employed as precursor to obtain a complex matrix nanoplatform for the fabrication of a high-performance electrochemical hybrid sensor. Three representative paste electrodes, which differ by the weight ratio between Zn(II) metallomesogen and carbon nanotubes (CNT), i.e., PE_01, PE_02 and PE_03, were obtained by mixing the materials in different amounts. The composition with the largest amount of CNT with respect to Zn complex, i.e., PE_03, gives the best electrochemical signal for uric acid detection by cyclic voltammetry in an alkaline medium. The amphiphilic structure of the Zn(II) coordination complex likely induces a regular separation between the metal centers favoring the redox system through their reduction, followed by stripping, and is characterized by enhanced electrocatalytic activity towards uric acid oxidation. The comparative detection of uric acid between the PE_03 paste electrode and the commercial zinc electrode demonstrated the superiority of the former, and its great potential for the development of advanced electrochemical detection of uric acid. Advanced electrochemical techniques, such as differential-pulsed voltammetry (DPV) and square-wave voltammetry (SWV), allowed for the highly sensitive detection of uric acid in aqueous alkaline solutions. In addition, a good and fast amperometric signal for uric acid detection was achieved by multiple-pulsed amperometry, which was validated by urine analysis. MDPI 2022-11-27 /pmc/articles/PMC9739524/ /pubmed/36500838 http://dx.doi.org/10.3390/nano12234215 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Negrea, Sorina
Andelescu, Adelina A.
Ilies (b. Motoc), Sorina
Cretu, Carmen
Cseh, Liliana
Rastei, Mircea
Donnio, Bertrand
Szerb, Elisabeta I.
Manea, Florica
Design of Nanostructured Hybrid Electrodes Based on a Liquid Crystalline Zn(II) Coordination Complex-Carbon Nanotubes Composition for the Specific Electrochemical Sensing of Uric Acid
title Design of Nanostructured Hybrid Electrodes Based on a Liquid Crystalline Zn(II) Coordination Complex-Carbon Nanotubes Composition for the Specific Electrochemical Sensing of Uric Acid
title_full Design of Nanostructured Hybrid Electrodes Based on a Liquid Crystalline Zn(II) Coordination Complex-Carbon Nanotubes Composition for the Specific Electrochemical Sensing of Uric Acid
title_fullStr Design of Nanostructured Hybrid Electrodes Based on a Liquid Crystalline Zn(II) Coordination Complex-Carbon Nanotubes Composition for the Specific Electrochemical Sensing of Uric Acid
title_full_unstemmed Design of Nanostructured Hybrid Electrodes Based on a Liquid Crystalline Zn(II) Coordination Complex-Carbon Nanotubes Composition for the Specific Electrochemical Sensing of Uric Acid
title_short Design of Nanostructured Hybrid Electrodes Based on a Liquid Crystalline Zn(II) Coordination Complex-Carbon Nanotubes Composition for the Specific Electrochemical Sensing of Uric Acid
title_sort design of nanostructured hybrid electrodes based on a liquid crystalline zn(ii) coordination complex-carbon nanotubes composition for the specific electrochemical sensing of uric acid
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9739524/
https://www.ncbi.nlm.nih.gov/pubmed/36500838
http://dx.doi.org/10.3390/nano12234215
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