Theoretical Study on Photocatalytic Reduction of CO2 on Anatase/Rutile Mixed-Phase TiO2
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Published:2024-08-29
Issue:17
Volume:29
Page:4105
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ISSN:1420-3049
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Container-title:Molecules
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language:en
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Short-container-title:Molecules
Author:
Li Jieqiong12ORCID, Wei Shiyu1, Dong Ying1, Zhang Yongya1ORCID, Wang Li2
Affiliation:
1. Henan Engineering Center of New Energy Battery Materials, College of Chemistry and Chemical Engineering, Shangqiu Normal University, Shangqiu 476000, China 2. Henan Key Laboratory of Protection and Safety Energy Storage of Light Metal Materials, Henan University, Kaifeng 475004, China
Abstract
The construction of anatase/rutile heterojunctions in TiO2 is an effective way of improving the CO2 photoreduction activity. Yet, the origin of the superior photocatalytic performance is still unclear. To solve this issue, the band edges between anatase and rutile phases were theoretically determined based on the three-phase atomic model of (112)A/II/(101)R, and simultaneously the CO2 reduction processes were meticulously investigated. Our calculations show that photogenerated holes can move readily from anatase to rutile via the thin intermediated II phase, while photoelectrons flowing in the opposite direction may be impeded due to the electron trapping sites at the II phase. However, the large potential drop across the anatase/rutile interface and the strong built-in electric field can provide an effective driving force for photoelectrons’ migration to anatase. In addition, the II phase can better enhance the solar light utilization of (112)A/(100)II, including a wide light response range and an intensive optical absorption coefficient. Meanwhile, the mixed-phase TiO2 possesses negligible hydrogenation energy (CO2 to COOH*) and lower rate-limiting energy (HCOOH* to HCO*), which greatly facilitate CH3OH generation. The efficient charge separation, strengthened light absorption, and facile CO2 reduction successfully demonstrate that the anatase/rutile mixed-phase TiO2 is an efficient photocatalyst utilized for CO2 conversion.
Funder
National Natural Science Foundation of China Natural Science Foundation of Henan for Excellent Young Scholars Program for Science & Technology Innovative Research Team in University of Henan Province
Reference53 articles.
1. Methodologies for enriched photocatalytic CO2 reduction: An overview;Khan;Int. J. Environ. Sci. Technol.,2024 2. Li, X., Xiong, J., Tang, Z., He, W., Wang, Y., Wang, X., Zhao, Z., and Wei, Y. (2023). Recent progress in metal oxide-based photocatalysts for CO2 reduction to solar fuels: A Review. Molecules, 28. 3. Cocatalysts in semiconductor-based photocatalytic CO2 reduction: Achievements, challenges, and opportunities;Ran;Adv. Mater.,2018 4. Rehman, Z.U., Bilal, M., Hou, J., Butt, F.K., Ahmad, J., Ali, S., and Hussain, A. (2022). Photocatalytic CO2 reduction using TiO2-based photocatalysts and TiO2 Z-scheme heterojunction composites: A review. Molecules, 27. 5. Recent advances on TiO2-based photocatalytic CO2 reduction;Kreft;EnergyChem,2020
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