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Advances in fundamentals and application of plasmon-assisted CO photoreduction. | LitMetric

Advances in fundamentals and application of plasmon-assisted CO photoreduction.

Nanophotonics

School of Engineering, College of Engineering and Computer Science, Australian National University, Canberra, ACT 2601, Australia.

Published: February 2024

AI Article Synopsis

  • Artificial photosynthesis using carbon dioxide (CO) could play a key role in creating renewable fuels and meeting global decarbonization goals, but converting CO is complex due to its chemical stability.
  • Recent research shows plasmonic nanoparticles can direct reactions and improve efficiency in producing hydrocarbons from CO, though practical applications are still limited.
  • This review outlines recent advancements in plasmon-enhanced CO photoreduction, discusses ongoing debates in the field, and offers insight into future research directions and challenges for improving photocatalysis.

Article Abstract

Artificial photosynthesis of hydrocarbons from carbon dioxide (CO) has the potential to provide renewable fuels at the scale needed to meet global decarbonization targets. However, CO is a notoriously inert molecule and converting it to energy dense hydrocarbons is a complex, multistep process, which can proceed through several intermediates. Recently, the ability of plasmonic nanoparticles to steer the reaction down specific pathways and enhance both reaction rate and selectivity has garnered significant attention due to its potential for sustainable energy production and environmental mitigation. The plasmonic excitation of strong and confined optical near-fields, energetic hot carriers and localized heating can be harnessed to control or enhance chemical reaction pathways. However, despite many seminal contributions, the anticipated transformative impact of plasmonics in selective CO photocatalysis has yet to materialize in practical applications. This is due to the lack of a complete theoretical framework on the plasmonic action mechanisms, as well as the challenge of finding efficient materials with high scalability potential. In this review, we aim to provide a comprehensive and critical discussion on recent advancements in plasmon-enhanced CO photoreduction, highlighting emerging trends and challenges in this field. We delve into the fundamental principles of plasmonics, discussing the seminal works that led to ongoing debates on the reaction mechanism, and we introduce the most recent advances, which could help disentangle these effects. We then synthesize experimental advances and measurements on plasmon CO photoreduction before concluding with our perspective and outlook on the field of plasmon-enhanced photocatalysis.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11501834PMC
http://dx.doi.org/10.1515/nanoph-2023-0793DOI Listing

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