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Synthesis of graphitic carbon nitride-enhanced manganese oxide microspheres for ultra-sensitive electrochemical detection of mercury (II) in environmental water sample

Authors
Venkatesh, KrishnanMuthukutty, BalamuruganLee, DaehoShanmugavel, KavithaAlshalwi, MatarAlotaibi, Khalid M.Kannan Ramaraj, Sayee
Issue Date
Aug-2024
Publisher
ELSEVIER SCIENCE INC
Keywords
Differential pulse voltammetry; Graphitic carbon nitride; Microsphere shape MnO2; Nanomolar detection; Synergistic effect
Citation
Journal of Industrial and Engineering Chemistry, v.136, pp 131 - 140
Pages
10
Journal Title
Journal of Industrial and Engineering Chemistry
Volume
136
Start Page
131
End Page
140
URI
https://scholarworks.bwise.kr/gachon/handle/2020.sw.gachon/91724
DOI
10.1016/j.jiec.2024.01.070
ISSN
1226-086X
1876-794X
Abstract
Mercury (Hg2+) is a highly toxic heavy metal in environmental water samples, resulting from improper releases, and causing widespread contamination with significant impacts on human health. Developing an appropriate method for detecting the toxic metal Hg2+ is crucial. Despite manganese oxide (MnO2) being employed for Hg2+ detection, its suboptimal electrocatalytic performance, due to inadequate electrical conductivity, stability, and chemical reactivity, prompted our innovative approach. We addressed this issue by utilizing a nitrogen-rich carbon source, 2D graphitic carbon nitride (g-C3N4), in conjunction with MnO2, crafting the MnO2@g-C3N4 composite to boost Hg2+ capabilities. A thorough analysis of the MnO2@g-C3N4 composite explored its structural, physical, and chemical properties, while different electrochemical techniques were employed to evaluate its electrocatalytic behavior. Consequently, MnO2@g-C3N4 composite-modified screen-printed carbon electrode (MnO2@g-C3N4@SPCE) demonstrated notable characteristics, including a detection limit (2.6 nM), an extended linear range, superior selectivity, and repeatability in Hg2+ detection. Moreover, the MnO2@g-C3N4 sensor, with a high recovery rate for Hg2+ in real sample analysis, particularly river water, showcased its excellent practicality attributed, to the synergistic effect between MnO2 and g-C3N4, providing numerous electroactive sites. © 2024 The Korean Society of Industrial and Engineering Chemistry
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MUTHUKUTTY, BALAMURUGAN
Engineering (기계·스마트·산업공학부(기계공학전공))
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