TY - JOUR
T1 - Design and synthesis of plasmonic gold nanostructures for solar photocatalysis
AU - Li, Hepeng
AU - Fan, Jinpeng
AU - Tian, Pei
AU - Wei, Jinjia
AU - Chen, Jie
N1 - Publisher Copyright:
© 2026, China International Book Trading Corp. (Guoji Shudian). All rights reserved.
PY - 2026/7/24
Y1 - 2026/7/24
N2 - Gold nanostructures exhibit promising potential in solar photocatalysis due to their localized surface plasmon resonance and excellent chemical stability. However, precise control over their morphology, optimization of heterostructure design, and understanding of performance enhancement mechanisms remain key challenges. This study systematically investigates the morphological regulation of gold nanoparticles, design principles of gold-based heterostructures, and their photocatalytic enhancement mechanisms. It outlines progress in core applications such as photocatalytic water splitting for hydrogen production, CO₂ reduction, organic reactions, and pollutant degradation, providing theoretical insights for developing efficient solar energy conversion materials. Three main synthesis methods, seed-mediated growth, templating, and electrochemical approaches, are summarized, focusing on how process parameters control the size, morphology, and microstructure of gold nanoparticles. Strategies and functional characteristics of gold-based heterostructures, including gold-noble metal, gold-silica, and gold-semiconductor composites, are reviewed. Applications and performance enhancement mechanisms in photocatalytic hydrogen production, CO₂ reduction, organic reactions, and pollutant degradation are emphasized. Results show that seed-mediated growth allows precise anisotropic control through capping agents, precursors, and reducing agents. Templating produces uniform and morphologically complex gold nanostructures, while electrochemical methods enable in situ controllable synthesis via potential and time adjustment. Gold-based heterostructures integrate plasmonic properties, interfacial charge separation, and catalytic activity, significantly broadening functionality. The localized surface plasmon resonance of gold nanoparticles extends light absorption, suppresses charge recombination, and leads to high photocatalytic activity, closely related to particle size, morphology, heterostructure type, and interfacial coupling. This work provides systematic theoretical guidance for the controlled synthesis, structural design, and photocatalytic application of gold nanomaterials.
AB - Gold nanostructures exhibit promising potential in solar photocatalysis due to their localized surface plasmon resonance and excellent chemical stability. However, precise control over their morphology, optimization of heterostructure design, and understanding of performance enhancement mechanisms remain key challenges. This study systematically investigates the morphological regulation of gold nanoparticles, design principles of gold-based heterostructures, and their photocatalytic enhancement mechanisms. It outlines progress in core applications such as photocatalytic water splitting for hydrogen production, CO₂ reduction, organic reactions, and pollutant degradation, providing theoretical insights for developing efficient solar energy conversion materials. Three main synthesis methods, seed-mediated growth, templating, and electrochemical approaches, are summarized, focusing on how process parameters control the size, morphology, and microstructure of gold nanoparticles. Strategies and functional characteristics of gold-based heterostructures, including gold-noble metal, gold-silica, and gold-semiconductor composites, are reviewed. Applications and performance enhancement mechanisms in photocatalytic hydrogen production, CO₂ reduction, organic reactions, and pollutant degradation are emphasized. Results show that seed-mediated growth allows precise anisotropic control through capping agents, precursors, and reducing agents. Templating produces uniform and morphologically complex gold nanostructures, while electrochemical methods enable in situ controllable synthesis via potential and time adjustment. Gold-based heterostructures integrate plasmonic properties, interfacial charge separation, and catalytic activity, significantly broadening functionality. The localized surface plasmon resonance of gold nanoparticles extends light absorption, suppresses charge recombination, and leads to high photocatalytic activity, closely related to particle size, morphology, heterostructure type, and interfacial coupling. This work provides systematic theoretical guidance for the controlled synthesis, structural design, and photocatalytic application of gold nanomaterials.
KW - gold nanostructures
KW - heterostructure
KW - photocatalysis
KW - solar energy
KW - surface plasmon effect
UR - https://www.scopus.com/pages/publications/105045495386
U2 - 10.13226/j.issn.1006-6772.GG26042001
DO - 10.13226/j.issn.1006-6772.GG26042001
M3 - 文章
AN - SCOPUS:105045495386
SN - 1006-6772
VL - 32
SP - 59
EP - 76
JO - Clean Coal Technology
JF - Clean Coal Technology
IS - 7
ER -