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Petaloid MoS2@MIL-88B(Fe) nanocomposite photocatalyst utilized to achieve accurate SWASV detection of Cd2+ and Pb2+ in water under low-pressure ultraviolet irradiation

纳米复合材料 光催化 紫外线 材料科学 辐照 光电子学 化学工程 纳米技术 化学 工程类 催化作用 物理 生物化学 核物理学
作者
Renjie He,Liya Feng,Shaowen Chen,Shijie Zhang,Yujie Shi,Ning Liu,Gang Liu,Xiande Zhao,Guo Zhao
出处
期刊:Environmental Technology and Innovation [Elsevier BV]
卷期号:38: 104078-104078 被引量:4
标识
DOI:10.1016/j.eti.2025.104078
摘要

Humic acid (HA) is an organic compound in natural water and can be complexed with heavy metal ions (HMIs), which interferes with the detection of square wave anodic stripping voltammetry (SWASV). In this study, a petaloid MoS 2 @MIL-88B(Fe) nanocomposite was synthesized via hydrothermal synthesis. Leveraging its ability to generate active species under low-pressure ultraviolet (LPUV) irradiation, a MoS 2 @MIL-88B(Fe)/LPUV-based pretreatment method was proposed to detect HMIs in water by disrupting the complexation between HA and HMIs, thus restoring the SWASV signals of HMIs. The microstructure, crystal structure, surface chemical state, band gap, photogenerated charge separation and recombination rates of MoS 2 @MIL-88B(Fe) were investigated, along with the degradation kinetics of HA, byproducts, and active species generated during pretreatment, to elucidate both the mechanism behind the disruption of HA-HMIs complexation and the restoration of SWASV signals. Additionally, the key pretreatment parameters, such as pH, the MoS 2 to MIL-88B(Fe) mass ratio, the photocatalyst concentration, and the photolysis time, were optimized for the choice signal restoration ratio. The proposed MoS 2 @MIL-88B(Fe)/LPUV-based pretreatment method was applied to real water samples, yielding a root mean square error (RMSE) of less than 0.2 μg/L compared with that of the national standard method, confirming its authenticity and feasibility. • An efficient and regulable pretreatment method was proposed for detecting HMIs. • A petaloid MoS 2 @MIL-88(Fe) nanocomposite catalyst was synthesized. • The key pretreatment parameters for detecting HMIs in water were optimized. • The restoration mechanism of the SWASV signals was investigated. • The pretreatment method has been successfully used for HMIs detection in water.
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