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Plasmon-induced selective carbon dioxide conversion on earth-abundant aluminum-cuprous oxide antenna-reactor nanoparticles.
Robatjazi, Hossein; Zhao, Hangqi; Swearer, Dayne F; Hogan, Nathaniel J; Zhou, Linan; Alabastri, Alessandro; McClain, Michael J; Nordlander, Peter; Halas, Naomi J.
Afiliação
  • Robatjazi H; Department of Electrical and Computer Engineering, Rice University, Houston, TX, 77005, USA.
  • Zhao H; Laboratory for Nanophotonics, Rice University, Houston, TX, 77005, USA.
  • Swearer DF; Department of Electrical and Computer Engineering, Rice University, Houston, TX, 77005, USA.
  • Hogan NJ; Laboratory for Nanophotonics, Rice University, Houston, TX, 77005, USA.
  • Zhou L; Laboratory for Nanophotonics, Rice University, Houston, TX, 77005, USA.
  • Alabastri A; Department of Chemistry, Rice University, Houston, TX, 77005, USA.
  • McClain MJ; Laboratory for Nanophotonics, Rice University, Houston, TX, 77005, USA.
  • Nordlander P; Department of Physics and Astronomy, Rice University, Houston, TX, 77005, USA.
  • Halas NJ; Laboratory for Nanophotonics, Rice University, Houston, TX, 77005, USA.
Nat Commun ; 8(1): 27, 2017 06 21.
Article em En | MEDLINE | ID: mdl-28638073
ABSTRACT
The rational combination of plasmonic nanoantennas with active transition metal-based catalysts, known as 'antenna-reactor' nanostructures, holds promise to expand the scope of chemical reactions possible with plasmonic photocatalysis. Here, we report earth-abundant embedded aluminum in cuprous oxide antenna-reactor heterostructures that operate more effectively and selectively for the reverse water-gas shift reaction under milder illumination than in conventional thermal conditions. Through rigorous comparison of the spatial temperature profile, optical absorption, and integrated electric field enhancement of the catalyst, we have been able to distinguish between competing photothermal and hot-carrier driven mechanistic pathways. The antenna-reactor geometry efficiently harnesses the plasmon resonance of aluminum to supply energetic hot-carriers and increases optical absorption in cuprous oxide for selective carbon dioxide conversion to carbon monoxide with visible light. The transition from noble metals to aluminum based antenna-reactor heterostructures in plasmonic photocatalysis provides a sustainable route to high-value chemicals and reaffirms the practical potential of plasmon-mediated chemical transformations.Plasmon-enhanced photocatalysis holds promise for the control of chemical reactions. Here the authors report an Al@Cu2O heterostructure based on earth abundant materials to transform CO2 into CO at significantly milder conditions.

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2017 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2017 Tipo de documento: Article