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Updated: Jan 15, 2026

Preparation of Silver-Palladium Alloyed Nanoparticles for Plasmonic Catalysis under Visible-Light Illumination
Published on: August 18, 2020
Plasmonic Double Perovskite LaSrCoMnO6 Drives Efficient and Selective Photothermal Catalytic Styrene Epoxidation
Qingping Ke1, Xu Guo1, Wenyu Wang1
1School of Chemistry and Chemical Engineering, Anhui University of Technology, Ma'anshan 243002, P. R. China.
Abstract:
Localized surface plasmon resonance (LSPR) opens a new avenue for solar-driven organic synthesis. In this work, we synthesize oxygen-vacancy-rich metallic LaSrCoMnO6 nanoparticles (LSCMn-N) with pronounced LSPR in the visible region. Unlike their microsized counterparts (LSCMn-M), LSCMn-N exhibits a metallic band structure, with enhanced visible light absorption (peaking at 740 nm) and photocurrent density. Under visible light irradiation (λ = 740 nm) and a mild temperature of 70 °C, identified Mn and Co reaction sites promote LSCMn-N to achieve superior photocatalytic styrene epoxidation performance with 99.9% styrene conversion and 91.3% styrene oxide selectivity within 1.5 h, outperforming LSCMn-M by 5.7-fold. Mechanistic studies reveal that the LSPR-induced electric field promotes the generation of carbon-centered radicals via activating styrene by photogenerated holes, while the photogenerated electrons facilitate O2 reduction to reactive oxygen species. This work highlights the potential of applying plasmonic double perovskites for driving highly efficient and selective solar-powered organic transformations, paving the way for sustainable chemical synthesis.
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