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Dual functions of CO2 molecular activation and 4f levels as electron transport bridges in erbium single atom composite photocatalysts therefore enhancing visible-light photoactivities.

Authors :
Chen, Qiuyu
Gao, Guoyang
Zhang, Yanzhou
li, Yini
Zhu, Hongyang
Zhu, Peifen
Qu, Yang
Wang, Guofeng
Qin, Weiping
Source :
Journal of Materials Chemistry A; 7/28/2021, Vol. 9 Issue 28, p15820-15826, 7p
Publication Year :
2021

Abstract

Only when the interfacial charge separation is enhanced and the CO<subscript>2</subscript> activation is improved, can the heterojunction nanocomposite photocatalyst be brought into full play for the CO<subscript>2</subscript> reduction reaction (CO<subscript>2</subscript>RR). Here, Er<superscript>3+</superscript> single atom composite photocatalysts were successfully constructed based on both the special role of Er<superscript>3+</superscript> single atoms and the special advantages of the SrTiO<subscript>3</subscript>:Er<superscript>3+</superscript>/g-C<subscript>3</subscript>N<subscript>4</subscript> heterojunction in the field of photocatalysis for the first time. As we expected, the SrTiO<subscript>3</subscript>:Er<superscript>3+</superscript>/g-C<subscript>3</subscript>N<subscript>4</subscript> (22.35 and 16.90 μmol g<superscript>−1</superscript> h<superscript>−1</superscript> for CO and CH<subscript>4</subscript>) exhibits about 5 times enhancement in visible-light photocatalytic activity compared to pure g-C<subscript>3</subscript>N<subscript>4</subscript> (4.60 and 3.40 μmol g<superscript>−1</superscript> h<superscript>−1</superscript> for CO and CH<subscript>4</subscript>). In particular, the photocatalytic performance of SrTiO<subscript>3</subscript>:Er<superscript>3+</superscript>/g-C<subscript>3</subscript>N<subscript>4</subscript> is more than three times higher than that of SrTiO<subscript>3</subscript>/g-C<subscript>3</subscript>N<subscript>4</subscript>. From Er<superscript>3+</superscript> fluorescence quenching measurements, photoelectrochemical studies, transient PL studies and DFT calculations, it is verified that a small fraction of surface doping of Er<superscript>3+</superscript> formed Er single-atoms on SrTiO<subscript>3</subscript> building an energy transfer bridge between the interface of SrTiO<subscript>3</subscript> and g-C<subscript>3</subscript>N<subscript>4</subscript>, resulting in enhanced interfacial charge separation. Aberration-corrected high-angle annular dark-field scanning transmission electron microscopy (AC HAADF-STEM) and adsorption energy calculations demonstrated that the exposed Er single-atoms outside the interface on SrTiO<subscript>3</subscript> preferentially activate the adsorbed CO<subscript>2</subscript>, leading to the high photoactivity for the CO<subscript>2</subscript>RR. A novel enhanced photocatalytic mechanism was proposed, in which Er single-atoms play dual roles of an energy transfer bridge and activating CO<subscript>2</subscript> to promote charge separation. This provides new insights and feasible routes to develop highly efficient photocatalytic materials by engineering rare-earth single-atom doping. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
20507488
Volume :
9
Issue :
28
Database :
Complementary Index
Journal :
Journal of Materials Chemistry A
Publication Type :
Academic Journal
Accession number :
151485148
Full Text :
https://doi.org/10.1039/d1ta02926f