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NH(2)-MIL-125(Ti)/Reduced Graphene Oxide Enhanced Electrochemical Detection of Fenitrothion in Agricultural Products

The abuse of organophosphate pesticides causes serious threats to human health, which threatens approximately 3 million people and leads to more than 2000 deaths each year. Therefore, it is necessary to determine the residue of fenitrothion (FT) in environmental and food samples. Herein, we develope...

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Autores principales: Shu, Zaixi, Zou, Yue, Wu, Xuyue, Zhang, Qi, Shen, Yafang, Xiao, Anhong, Duan, Shuo, Pi, Fuwei, Liu, Xiaodan, Wang, Jiahua, Dai, Huang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10093892/
https://www.ncbi.nlm.nih.gov/pubmed/37048355
http://dx.doi.org/10.3390/foods12071534
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author Shu, Zaixi
Zou, Yue
Wu, Xuyue
Zhang, Qi
Shen, Yafang
Xiao, Anhong
Duan, Shuo
Pi, Fuwei
Liu, Xiaodan
Wang, Jiahua
Dai, Huang
author_facet Shu, Zaixi
Zou, Yue
Wu, Xuyue
Zhang, Qi
Shen, Yafang
Xiao, Anhong
Duan, Shuo
Pi, Fuwei
Liu, Xiaodan
Wang, Jiahua
Dai, Huang
author_sort Shu, Zaixi
collection PubMed
description The abuse of organophosphate pesticides causes serious threats to human health, which threatens approximately 3 million people and leads to more than 2000 deaths each year. Therefore, it is necessary to determine the residue of fenitrothion (FT) in environmental and food samples. Herein, we developed a non-enzymatic electrochemical sensor with differential pulse voltammetry signal output to determine FT in model solutions and spiked samples. Delicately, the sensor was designed based on the fabrication of hydrothermally synthesized titanium-based metal-organic frameworks (MOFs) material (NH(2)-MIL-125(Ti))/reduced graphene oxide (RGO) (NH(2)-MIL-125(Ti)/RGO) nanocomposites for better target enrichment and electron transfer. The peak response of differential pulse voltammetry for FT under optimized conditions was linear in the range of 0.072–18 μM with the logarithm of concentrations, and the detection limit was 0.0338 μM. The fabricated sensor also demonstrated high stability and reproducibility. Moreover, it exhibited excellent sensing performances for FT in spiked agricultural products. The convenient fabrication method of NH(2)-MIL-125(Ti)/RGO opens up a new approach for the rational design of non-enzymatic detection methods for pesticides.
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spelling pubmed-100938922023-04-13 NH(2)-MIL-125(Ti)/Reduced Graphene Oxide Enhanced Electrochemical Detection of Fenitrothion in Agricultural Products Shu, Zaixi Zou, Yue Wu, Xuyue Zhang, Qi Shen, Yafang Xiao, Anhong Duan, Shuo Pi, Fuwei Liu, Xiaodan Wang, Jiahua Dai, Huang Foods Article The abuse of organophosphate pesticides causes serious threats to human health, which threatens approximately 3 million people and leads to more than 2000 deaths each year. Therefore, it is necessary to determine the residue of fenitrothion (FT) in environmental and food samples. Herein, we developed a non-enzymatic electrochemical sensor with differential pulse voltammetry signal output to determine FT in model solutions and spiked samples. Delicately, the sensor was designed based on the fabrication of hydrothermally synthesized titanium-based metal-organic frameworks (MOFs) material (NH(2)-MIL-125(Ti))/reduced graphene oxide (RGO) (NH(2)-MIL-125(Ti)/RGO) nanocomposites for better target enrichment and electron transfer. The peak response of differential pulse voltammetry for FT under optimized conditions was linear in the range of 0.072–18 μM with the logarithm of concentrations, and the detection limit was 0.0338 μM. The fabricated sensor also demonstrated high stability and reproducibility. Moreover, it exhibited excellent sensing performances for FT in spiked agricultural products. The convenient fabrication method of NH(2)-MIL-125(Ti)/RGO opens up a new approach for the rational design of non-enzymatic detection methods for pesticides. MDPI 2023-04-04 /pmc/articles/PMC10093892/ /pubmed/37048355 http://dx.doi.org/10.3390/foods12071534 Text en © 2023 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
Shu, Zaixi
Zou, Yue
Wu, Xuyue
Zhang, Qi
Shen, Yafang
Xiao, Anhong
Duan, Shuo
Pi, Fuwei
Liu, Xiaodan
Wang, Jiahua
Dai, Huang
NH(2)-MIL-125(Ti)/Reduced Graphene Oxide Enhanced Electrochemical Detection of Fenitrothion in Agricultural Products
title NH(2)-MIL-125(Ti)/Reduced Graphene Oxide Enhanced Electrochemical Detection of Fenitrothion in Agricultural Products
title_full NH(2)-MIL-125(Ti)/Reduced Graphene Oxide Enhanced Electrochemical Detection of Fenitrothion in Agricultural Products
title_fullStr NH(2)-MIL-125(Ti)/Reduced Graphene Oxide Enhanced Electrochemical Detection of Fenitrothion in Agricultural Products
title_full_unstemmed NH(2)-MIL-125(Ti)/Reduced Graphene Oxide Enhanced Electrochemical Detection of Fenitrothion in Agricultural Products
title_short NH(2)-MIL-125(Ti)/Reduced Graphene Oxide Enhanced Electrochemical Detection of Fenitrothion in Agricultural Products
title_sort nh(2)-mil-125(ti)/reduced graphene oxide enhanced electrochemical detection of fenitrothion in agricultural products
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10093892/
https://www.ncbi.nlm.nih.gov/pubmed/37048355
http://dx.doi.org/10.3390/foods12071534
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