Calcination-induced enhancement of Cd 2+ and Pb 2+ electrochemical detection capabilities of nano-ag-supported CoZn bi-metal ZIFs

Electrode materials with a large specific surface area, good conductivity, and efficient electrochemical catalytic activity are necessary for the rapid and accurate electrochemical detection of heavy metal ions. Based on the advantage of the high specific surface area of MOF materials, in this study...

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Veröffentlicht in:Environmental science. Nano 2024-05, Vol.11 (5), p.2061-2072
Hauptverfasser: Wang, Siyan, Zhao, Yangcan, Xia, Chengkai, Zhu, Wantong, Hou, Ying, Zeng, Xiangpeng, Xu, Hongyan
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container_end_page 2072
container_issue 5
container_start_page 2061
container_title Environmental science. Nano
container_volume 11
creator Wang, Siyan
Zhao, Yangcan
Xia, Chengkai
Zhu, Wantong
Hou, Ying
Zeng, Xiangpeng
Xu, Hongyan
description Electrode materials with a large specific surface area, good conductivity, and efficient electrochemical catalytic activity are necessary for the rapid and accurate electrochemical detection of heavy metal ions. Based on the advantage of the high specific surface area of MOF materials, in this study, an Ag nanoparticle-supported CoZn bi-metal zeolitic imidazolate framework (Ag@ZIF) was decorated on working electrodes for Pb 2+ and Cd 2+ detection, and its conductivity and electrochemical catalytic activity were boosted to a high scale via calcination. A systematic study was conducted to discern the impact of the calcination temperature on the composition, structure, and electrochemical performance of Ag@ZIF. The investigation indicated that as the calcination temperature was increased from 600 °C to 1100 °C, the Co 2+ and Zn 2+ ions in Ag@ZIF were first combined into Co 3 ZnC and then transferred to metallic Co and Zn, accompanied with the complete evaporation of Zn at a high calcination temperature of 1000 °C. While the morphology of the calcinated Ag@ZIF turned from multiporous dodecahedra to multiporous spheres, followed by the collapse of the framework at 1100 °C. The Ag@ZIF calcinated at 1000 °C exhibited optimal performance for heavy metal ion detection, with a low limit of detection (Pb 2+ 7.28 nM, Cd 2+ 14.63 nM) and high sensitivity (Pb 2+ 8.907 μA μM −1 , Cd 2+ 4.757 μA μM −1 ). Moreover, the fabricated sensor also demonstrated excellent selectivity, repeatability, and stability, making it suitable for detecting Pb 2+ and Cd 2+ in real water samples.
doi_str_mv 10.1039/D3EN00956D
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The Ag@ZIF calcinated at 1000 °C exhibited optimal performance for heavy metal ion detection, with a low limit of detection (Pb 2+ 7.28 nM, Cd 2+ 14.63 nM) and high sensitivity (Pb 2+ 8.907 μA μM −1 , Cd 2+ 4.757 μA μM −1 ). Moreover, the fabricated sensor also demonstrated excellent selectivity, repeatability, and stability, making it suitable for detecting Pb 2+ and Cd 2+ in real water samples.</description><identifier>ISSN: 2051-8153</identifier><identifier>EISSN: 2051-8161</identifier><identifier>DOI: 10.1039/D3EN00956D</identifier><language>eng</language><ispartof>Environmental science. 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title Calcination-induced enhancement of Cd 2+ and Pb 2+ electrochemical detection capabilities of nano-ag-supported CoZn bi-metal ZIFs
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