Promoting photoreduction selectivity synergetic utilization between vacancy and nanofiber structure over flexible Zr/TiO nanofiber films
Photocatalytic conversion of CO 2 into value-added hydrocarbon fuels is a promising approach to alleviate the energy crisis caused by the overuse of fossil fuels. Here, a flexible Zr/TiO 2− x nanofiber photocatalyst with abundant oxygen-vacancies (OVs) has been fabricated and employed in the CO 2 ph...
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Veröffentlicht in: | Journal of materials chemistry. C, Materials for optical and electronic devices Materials for optical and electronic devices, 2024-04, Vol.12 (15), p.5377-5385 |
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Zusammenfassung: | Photocatalytic conversion of CO
2
into value-added hydrocarbon fuels is a promising approach to alleviate the energy crisis caused by the overuse of fossil fuels. Here, a flexible Zr/TiO
2−
x
nanofiber photocatalyst with abundant oxygen-vacancies (OVs) has been fabricated and employed in the CO
2
photocatalytic reduction process. The selectivity for the photocatalytic reduction of CO
2
to CH
4
over H400-Zr/TiO
2−
x
nanofiber films could reach up to 87.6% which is rather high compared with currently reported photocatalytic systems. In-depth experiments demonstrate that the high product selectivity of CH
4
originated from the synergetic effect between vacancy and nanofiber structure in H400-Zr/TiO
2−
x
. Density functional theory (DFT) simulation reveals that the existence of a vacancy in H400-Zr/TiO
2−
x
facilitates a reduction in the surface free energy barrier from the intermediate CO* to CHO* during the production of CH
4
, which is further confirmed by the observed obvious CHO* signal in
in situ
FTIR spectra. Additionally, the characteristic of one-dimensional long-range orientation and large surface area of nanofiber structure of H400-Zr/TiO
2−
x
is beneficial to providing more catalytic active sites which help to promote the CO
2
photoreduction property. This work paves the way for the efficient design of photocatalytic systems towards high conversion of CO
2
to CH
4
.
Here, flexible defective Zr/TiO
2−
x
nanofiber film was prepared, and the rather high selectivity for the photoreduction of CO
2
to CH
4
could be achieved due to the synergetic effect of OVs and nanofiber structure. |
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ISSN: | 2050-7526 2050-7534 |
DOI: | 10.1039/d4tc00098f |