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請用此 Handle URI 來引用此文件: http://scholars.ntou.edu.tw/handle/123456789/26496
標題: Zerovalent Fe Atom-Enriched Fe<sub>3</sub>C@C Electrocatalysts for Selective Heavy Metals Sensing
作者: Karuppusamy, Naveen
Manavalan, Shaktivel
Chen, Shen Ming
Lou, Bih-Show
Jung, Sung Mi
Nga, Ta Thi Thuy
Mannu, Pandian
Dong, Chung Li
Li, Ying
Wang, Chih-Min 
Duann, Yeh-Fang
Chen, Chi-Liang
Lee, Jyh-Wei
關鍵字: zerovalent iron;heavy metalsdetection;ironcarbide;electrochemical sensor;thermal reduction
公開日期: 2025
出版社: AMER CHEMICAL SOC
卷: 8
期: 37
起(迄)頁: 18018-18031
來源出版物: ACS APPLIED NANO MATERIALS
摘要: 
This study addresses emerging concerns regarding the toxicity of heavy metals in daily consumption and their severe health implications. Hence, there is a critical need to develop an accurate monitoring tool for heavy metals in environmental sources. Herein, we report zerovalent iron-enriched Fe3C@C (Fe(0)/Fe3C@C) obtained from carbonization of materiaux l'institut lavoisier-88A (MIL-88A), a member of the metal-organic framework (MOF) as a superior electrocatalyst for the simultaneous detection of various heavy metals. The morphology and properties of Fe(0)/Fe3C@C are controllable at different temperature conditions so that the maximum carbon-confined zerovalent iron (ZVI) atoms are achieved at higher temperature pyrolysis (900 degrees C) of MIL-88A. As a result, it shows the best performance in the electrochemical detection of heavy metals owing to its reduction capability, higher affinity, strong adsorption capacity, abundant active sites, and ionic conductivity. The X-ray absorption spectroscopy (XAS) performed under different conditions indicates that the additional charges from modified Fe clusters significantly enhance the electrochemical performance. The simultaneous and individual electrochemical sensing performance based on Fe(0)/Fe3C@C-900 demonstrated an excellent sensitivity with a lower limit of detection (LOD) of 0.29 nM, 0.54 nM, 0.68 nM, and 0.92 nM for simultaneous sensing and 3.20 nM, 1.69 nM, 7.96 nM, and 2.04 nM for individual sensing of cadmium ion (Cd2+), lead ion (Pb2+), copper ion (Cu2+), and mercury ion (Hg2+), respectively, over concentrations ranges from 15 mu M to 75 mu M using the differential pulse voltammetry (DPV) technique. Furthermore, real-time analysis in water samples for the electrochemical detection of proposed heavy metals is demonstrated. Overall, this study aims to highlight the importance of controlling pyrolysis and electrode characterization and enabling simultaneous electrochemical detection of heavy metal for further commercial applications.
URI: http://scholars.ntou.edu.tw/handle/123456789/26496
DOI: 10.1021/acsanm.5c03213
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