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Engineering highly dispersed AgI nanoparticles on hierarchical In2S3 hollow nanotube to construct Z-scheme heterojunction for efficient photodegradation of insecticide imidacloprid

JOURNAL OF COLLOID AND INTERFACE SCIENCE [2023]
Jushi Weng, Jun Chen, Yifei Xu, Xinru Hu, Chuangyun Guo, Yang Yang, Jingyi Sun, Lianshe Fu, Qing Wang, Jiamin Wei, Tinghai Yang
ABSTRACT

Increasing the exposure of active sites and improving the intrinsic activity are necessary considerations for designing a highly efficient photocatalyst. Herein, an In 2 S 3 /AgI stable Z-scheme heterojunction with highly dispersed AgI nanoparticles (NPs) is synthesized by the mild self-templated and in-situ ion exchange strategy. Impressively, the optimized In 2 S 3 /AgI-300 Z-scheme heterojunction exhibits superior photodegradation activity (0.020 min −1 ) for the decomposition of insecticide imidacloprid (IMD), which is extremely higher than that of pure In 2 S 3 (0.002 min −1 ) and AgI (0.013 min −1 ). Importantly, the three-dimensional excitation-emission matrix (3D EEMs) fluorescence spectra, high-resolution mass spectrometry (HRMS), the photoelectrochemical tests, radical trapping experiment, and electron spin resonance (ESR) technique are performed to clarify the possible degradation pathway and mechanism of IMD by the In 2 S 3 /AgI-300 composite. The enhanced photocatalytic performance is attributed to the highly dispersed AgI NPs on hierarchical In 2 S 3 hollow nanotube and the construction of In 2 S 3 /AgI Z-scheme heterojunction, which can not only increase active site exposure, but also improve its intrinsic activity, facilitating rapid charge transfer rate and excellent electron-hole pairs separation efficiency. Meanwhile, the practical application potential of the In 2 S 3 /AgI-300 composite is systematically investigated. This study opens a new insight for designing catalysts with high photocatalytic performance through a convenient approach.

MATERIALS

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