| Literature DB >> 35178471 |
Simone Ezendam1, Matias Herran1, Lin Nan1, Christoph Gruber1, Yicui Kang1, Franz Gröbmeyer1, Rui Lin1, Julian Gargiulo1, Ana Sousa-Castillo1, Emiliano Cortés1.
Abstract
The successful development of artificial photosynthesis requires finding new materials able to efficiently harvest sunlight and catalyze hydrogen generation and carbon dioxide reduction reactions. Plasmonic nanoparticles are promising candidates for these tasks, due to their ability to confine solar energy into molecular regions. Here, we review recent developments in hybrid plasmonic photocatalysis, including the combination of plasmonic nanomaterials with catalytic metals, semiconductors, perovskites, 2D materials, metal-organic frameworks, and electrochemical cells. We perform a quantitative comparison of the demonstrated activity and selectivity of these materials for solar fuel generation in the liquid phase. In this way, we critically assess the state-of-the-art of hybrid plasmonic photocatalysts for solar fuel production, allowing its benchmarking against other existing heterogeneous catalysts. Our analysis allows the identification of the best performing plasmonic systems, useful to design a new generation of plasmonic catalysts.Entities:
Year: 2022 PMID: 35178471 PMCID: PMC8845048 DOI: 10.1021/acsenergylett.1c02241
Source DB: PubMed Journal: ACS Energy Lett Impact factor: 23.101