Porous Carbon Substrate Improving the Sensing Performance of Copper Nanoparticles Toward Glucose

Abstract An accurate sensor to rapidly determine the glucose concentration is of significant importance for the human body health, as diabetes has become a very high incidence around the world. In this work, copper nanoparticles accommodated in porous carbon substrates (Cu NP@PC), synthesized by cal...

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Main Authors: Zewen Qu, Shi Li, Wenshuai Feng, Shuting Kan, Xiaohui Gao, Aimin Guo, Hongjian Li, Lianwen Deng, Shengxiang Huang, Yan Zhao, Wei Chen
Format: Article
Language:English
Published: SpringerOpen 2021-08-01
Series:Nanoscale Research Letters
Subjects:
Online Access:https://doi.org/10.1186/s11671-021-03579-y
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spelling doaj-f8da385ed0e24ee9ac281d9f7fe779092021-08-08T11:40:37ZengSpringerOpenNanoscale Research Letters1556-276X2021-08-011611810.1186/s11671-021-03579-yPorous Carbon Substrate Improving the Sensing Performance of Copper Nanoparticles Toward GlucoseZewen Qu0Shi Li1Wenshuai Feng2Shuting Kan3Xiaohui Gao4Aimin Guo5Hongjian Li6Lianwen Deng7Shengxiang Huang8Yan Zhao9Wei Chen10School of Physics and Electronics, Hunan Key Laboratory for Super-Microstructure and Ultrafast Process, Central South UniversitySchool of Physics and Electronics, Hunan Key Laboratory for Super-Microstructure and Ultrafast Process, Central South UniversitySchool of Physics and Electronics, Hunan Key Laboratory for Super-Microstructure and Ultrafast Process, Central South UniversityCollege of Chemistry and Chemical Engineering, Central South UniversitySchool of Physics and Electronics, Hunan Key Laboratory for Super-Microstructure and Ultrafast Process, Central South UniversitySchool of Physics and Electronics, Hunan Key Laboratory for Super-Microstructure and Ultrafast Process, Central South UniversitySchool of Physics and Electronics, Hunan Key Laboratory for Super-Microstructure and Ultrafast Process, Central South UniversitySchool of Physics and Electronics, Hunan Key Laboratory for Super-Microstructure and Ultrafast Process, Central South UniversitySchool of Physics and Electronics, Hunan Key Laboratory for Super-Microstructure and Ultrafast Process, Central South UniversitySchool of Physics and Electronics, Hunan Key Laboratory for Super-Microstructure and Ultrafast Process, Central South UniversitySchool of Physics and Electronics, Hunan Key Laboratory for Super-Microstructure and Ultrafast Process, Central South UniversityAbstract An accurate sensor to rapidly determine the glucose concentration is of significant importance for the human body health, as diabetes has become a very high incidence around the world. In this work, copper nanoparticles accommodated in porous carbon substrates (Cu NP@PC), synthesized by calcinating the filter papers impregnated with copper ions at high temperature, were designed as the electrode active materials for electrochemical sensing of glucose. During the formation of porous carbon, the copper nanoparticles spontaneously accommodated into the formed voids and constituted the half-covered composites. For the electrochemical glucose oxidation, the prepared Cu NP@PC composites exhibit much superior catalytic activity with the current density of 0.31 mA/cm2 at the potential of 0.55 V in the presence of 0.2 mM glucose. Based on the high electrochemical oxidation activity, the present Cu NP@PC composites also exhibit a superior glucose sensing performance. The sensitivity is determined to be 84.5 μA /(mmol.L) with a linear range of 0.01 ~ 1.1 mM and a low detection limit (LOD) of 2.1 μmol/L. Compared to that of non-porous carbon supported copper nanoparticles (Cu NP/C), this can be reasonable by the improved mass transfer and strengthened synergistic effect between copper nanoparticles and porous carbon substrates.https://doi.org/10.1186/s11671-021-03579-ySensorCopper nanoparticlesGlucose detectionElectrochemistry
collection DOAJ
language English
format Article
sources DOAJ
author Zewen Qu
Shi Li
Wenshuai Feng
Shuting Kan
Xiaohui Gao
Aimin Guo
Hongjian Li
Lianwen Deng
Shengxiang Huang
Yan Zhao
Wei Chen
spellingShingle Zewen Qu
Shi Li
Wenshuai Feng
Shuting Kan
Xiaohui Gao
Aimin Guo
Hongjian Li
Lianwen Deng
Shengxiang Huang
Yan Zhao
Wei Chen
Porous Carbon Substrate Improving the Sensing Performance of Copper Nanoparticles Toward Glucose
Nanoscale Research Letters
Sensor
Copper nanoparticles
Glucose detection
Electrochemistry
author_facet Zewen Qu
Shi Li
Wenshuai Feng
Shuting Kan
Xiaohui Gao
Aimin Guo
Hongjian Li
Lianwen Deng
Shengxiang Huang
Yan Zhao
Wei Chen
author_sort Zewen Qu
title Porous Carbon Substrate Improving the Sensing Performance of Copper Nanoparticles Toward Glucose
title_short Porous Carbon Substrate Improving the Sensing Performance of Copper Nanoparticles Toward Glucose
title_full Porous Carbon Substrate Improving the Sensing Performance of Copper Nanoparticles Toward Glucose
title_fullStr Porous Carbon Substrate Improving the Sensing Performance of Copper Nanoparticles Toward Glucose
title_full_unstemmed Porous Carbon Substrate Improving the Sensing Performance of Copper Nanoparticles Toward Glucose
title_sort porous carbon substrate improving the sensing performance of copper nanoparticles toward glucose
publisher SpringerOpen
series Nanoscale Research Letters
issn 1556-276X
publishDate 2021-08-01
description Abstract An accurate sensor to rapidly determine the glucose concentration is of significant importance for the human body health, as diabetes has become a very high incidence around the world. In this work, copper nanoparticles accommodated in porous carbon substrates (Cu NP@PC), synthesized by calcinating the filter papers impregnated with copper ions at high temperature, were designed as the electrode active materials for electrochemical sensing of glucose. During the formation of porous carbon, the copper nanoparticles spontaneously accommodated into the formed voids and constituted the half-covered composites. For the electrochemical glucose oxidation, the prepared Cu NP@PC composites exhibit much superior catalytic activity with the current density of 0.31 mA/cm2 at the potential of 0.55 V in the presence of 0.2 mM glucose. Based on the high electrochemical oxidation activity, the present Cu NP@PC composites also exhibit a superior glucose sensing performance. The sensitivity is determined to be 84.5 μA /(mmol.L) with a linear range of 0.01 ~ 1.1 mM and a low detection limit (LOD) of 2.1 μmol/L. Compared to that of non-porous carbon supported copper nanoparticles (Cu NP/C), this can be reasonable by the improved mass transfer and strengthened synergistic effect between copper nanoparticles and porous carbon substrates.
topic Sensor
Copper nanoparticles
Glucose detection
Electrochemistry
url https://doi.org/10.1186/s11671-021-03579-y
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