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Updated: Jan 17, 2026

Synthesis, Characterization, and Functionalization of Hybrid Au/CdS and Au/ZnS Core/Shell Nanoparticles
Published on: March 2, 2016
Modulation of Highly Ordered Au-Cu2O Core-Satellite Nanostructures for Enhanced Photocatalytic Performance
Wenjia Xu1, Lingyu Zhang2, Liwen Cang1
1School of Life Sciences and Chemical Engineering, Jiangsu Second Normal University, Nanjing 211200, China.
Abstract:
Janus nanostructures, distinguished by their inherent asymmetry, have attracted considerable attention due to their potential in diverse applications, particularly in photocatalysis. However, conventional single-island Janus structures are limited by their simplified surface architecture, which lead to fewer active sites and restricted electron/photon interaction pathways. Herein, we propose a strategy based on interfacial control to fabricate core-satellite (CSt) nanostructures, wherein polycrystalline Au nanoparticles (pc-Au NPs) serve as seeds for the controlled growth of copper(I) oxide (Cu2O) islands. Strong ligand-mediated interfacial interactions enable precise regulation of Cu2O growth on polycrystalline Au seeds, leading to well-defined core-satellite configurations. This architecture enhances interfacial area and creates multiple Au-Cu2O interfaces that facilitate synergistic charge separation and directional transport. As a result, the core-satellite structures exhibit markedly improved photocatalytic performance compared with their single-island and core-shell counterparts. This work underscores the structural advantages of core-satellite nanostructures and provides a tunable platform for designing high-efficiency photocatalysts in energy conversion and related applications.
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