检出限
热解
化学需氧量
碳纤维
循环伏安法
重铬酸钾
电极
电化学
铜
氧化还原
材料科学
线性范围
化学
无机化学
化学工程
废水
色谱法
环境工程
有机化学
冶金
环境科学
复合材料
物理化学
复合数
工程类
作者
Pei Li,Yan Yu,Yining Sun,Qing Chang,Yuqun Xie,Guodong Jiang
标识
DOI:10.1002/elan.202300361
摘要
Abstract Efficient detection of chemical oxygen demand (COD) is crucial for effective pollution prevention. Traditional Cu‐based electrodes, widely utilized for COD sensors suffer from issues related to low activity and stability. This study introduced a novel approach by employing a copper foam‐supported metal‐organic frameworks (Cu‐MOF), synthesized through a solvothermal method, which is subsequently pyrolyzed to yield a carbon‐capsulated CuO x /Cu foam electrode. Cyclic voltammetry analysis demonstrated that the carbon‐capsulated CuO x /Cu foam electrode exhibited superior redox activity, notably generating an increased amount of Cu(III) species. This enhancement significantly contributed to the electrocatalytic oxidation of organic compounds. The developed electrode demonstrated a wide linear detection range of 5–600 ppm, with a low detection limit of 0.96 ppm (S/N=3) for COD sensing. Notably, the sensor exhibited excellent anti‐interference capabilities, desirable reproducibility, and stability. The proposed method was successfully applied to determine COD in real water samples. Comparative analysis with the standard potassium dichromate method revealed high accuracy and a low relative error (2.89 %–6.72 %). This innovative approach holds promise for rapid and accurate COD detection, presenting a valuable contribution to environmental monitoring and water quality assessment.
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