Issue 29, 2019

A ruthenium-based plasmonic hybrid photocatalyst for aqueous carbon dioxide conversion with a high reaction rate and selectivity

Abstract

Photocatalytic CO2 conversion has been paid great attention in an effort to produce renewable hydrocarbon fuels in a sustainable manner using solar energy. However, new catalytic materials still need to be developed to improve the conversion efficiency, selectivity, and stability for practical applications. Here we report a ruthenium-based asymmetric catalyst immobilized onto a plasmonic Au/TiO2 heterostructure to efficiently and selectively convert CO2 into formic acid in an aqueous solution. The plasmonic heterostructure promotes multi-electron transfer towards the catalyst through efficient charge separation at a Schottky junction. The ruthenium complex is stably immobilized onto the heterostructure by two phosphonate groups, and the catalytic centre is stabilized by bidentate π-backbonding. The photocatalytic structure exhibits a high turnover frequency of 1200 h−1 at 360 mW cm−2, a superior selectivity towards formic acid (∼95%) even at a low pH (∼pH 3), and a remarkable reusability over 50 hours without loss of the catalytic activity.

Graphical abstract: A ruthenium-based plasmonic hybrid photocatalyst for aqueous carbon dioxide conversion with a high reaction rate and selectivity

Supplementary files

Article information

Article type
Communication
Submitted
03 Jun 2019
Accepted
02 Jul 2019
First published
03 Jul 2019

J. Mater. Chem. A, 2019,7, 17254-17260

A ruthenium-based plasmonic hybrid photocatalyst for aqueous carbon dioxide conversion with a high reaction rate and selectivity

H. Jun, S. Choi, M. Y. Yang and Y. S. Nam, J. Mater. Chem. A, 2019, 7, 17254 DOI: 10.1039/C9TA05880J

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