Metal–Organic Framework-Derived Nanozyme with Enhanced Laccase-like Activity for Capturing and Detection of Lead Ions

催化作用 共沉淀 化学 纳米材料 水溶液 纳米颗粒 热液循环 检出限 纳米复合材料 吸收(声学) 无机化学 扩展X射线吸收精细结构 选择性 光化学 离子 多孔性 组合化学 发光 水热合成 多相催化 化学工程 荧光 纳米技术
作者
Shu Huang,Yihuan Gao,Yani Liu,Yupeng Guo,Jing Liu,Jianru Tang,Meiling Liu
出处
期刊:ACS applied nano materials [American Chemical Society]
卷期号:8 (51): 24548-24559 被引量:2
标识
DOI:10.1021/acsanm.5c04895
摘要

Metal–organic frameworks (MOFs) have garnered significant interest in environmental monitoring and remediation due to their tailorable porosity and tunable functional properties. In this work, a dual-functional nanozyme, denoted as PCN-224@Co 3 O 4, was synthesized through combined hydrothermal and coprecipitation methods. The immobilization of Co 3 O 4 nanoparticles within the PCN-224 framework not only enhances its laccase-like catalytic activity but also preserves the intrinsic fluorescence of the MOF. The innovation of this nanomaterial lies in the strategic synergy between the confinement effect of the MOFs and the catalytic properties of Co 3 O 4, leading to the construction of an integrated colorimetric and fluorescence dual-mode sensing nanoplatform for Pb 2+ . Specifically, Pb 2+ ions selectively coordinate with the TCPP ligands within the MOF pores, thereby simultaneously modulating both the catalytic activity and the fluorescence emission, which underpins a highly reliable dual-mode sensing mechanism. Experimental results confirm that the PCN-224@Co 3 O 4 nanozyme efficiently catalyzes the oxidation of 2,4-dichlorophenol (2,4-DCP) in the presence of 4-aminoantipyrine (4-AAP), producing a colored quinoneimine dye with a characteristic absorption peak at 510 nm. Upon introduction of Pb 2+, the ions diffuse into the MOF channels and coordinate with nitrogen atoms on the TCPP ligands, which not only suppresses the catalytic activity of Co 3 O 4 but also quenches the fluorescence of PCN-224. Based on this dual-response mechanism, a highly sensitive detection platform for Pb 2+ was established, achieving a detection limit as low as 0.1 nM. Moreover, the nanocomposite demonstrates excellent performance in capturing and immobilizing Pb 2+ from aqueous media, underscoring its potential for the development of integrated “detection–remediation” technologies that align with the principles of green chemistry.
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