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Unravelling the effect of Ti3+/Ti4+ active sites dynamic on reaction pathways in direct gas-solid-phase CO2 photoreduction

Title
Unravelling the effect of Ti3+/Ti4+ active sites dynamic on reaction pathways in direct gas-solid-phase CO2 photoreduction
Author(s)
Powar, Niket SureshKim, SanghoonLee, JunhoGong, EunheeHiragond, Chaitanya B.Kim, DongyunZhang, TieruiKim, MinhoIn, Su-Il
Issued Date
2024-09
Citation
Applied Catalysis B: Environment and Energy, v.352
Type
Article
Author Keywords
Charge separationHeterostructureAmorphous photocatalystCO2 photoreduction
Keywords
TOTAL-ENERGY CALCULATIONSABSORPTION SPECTRASOLAR LIGHTTIO2ACTIVATIONDENSITYANATASE
ISSN
0926-3373
Abstract
Converting CO2 to CH4 by solar-powered catalysis involves complex steps that produce a range of by-products. Therefore, designing efficient heterostructures for a particular chemical synthesis is challenging. The optimisation of photocatalyst surfaces can achieve the desired CO2 photoreduction pathway. Herein, we developed TiO2/CdSe nanocrystals with both amorphous and crystalline TiO2 surfaces. In situ EXAFS analysis revealed that the amorphous surface contains abundant active Ti3+ sites, while the crystalline surface is limited. Moreover, the amorphous surface of TiO2/CdSe exhibits self-regenerating Ti3+ active sites, which enable a novel CH4 cycle. Density functional theory calculation showed that an amorphous structure enhances electron transfer and localisation to Ti3+, favouring CO2 adsorption. In situ DRIFTS analysis showed different CO2 to CH4 pathways on both surfaces. These results show the potential for enhanced photocatalytic CO2 reduction through surface engineering, which has far-reaching implications for sustainable energy conversion. © 2024 Elsevier B.V.
URI
http://hdl.handle.net/20.500.11750/57027
DOI
10.1016/j.apcatb.2024.124006
Publisher
Elsevier
Related Researcher
  • 인수일 In, Su-Il
  • Research Interests CO2 conversion to hydrocarbon fuels; Water splitting for hydrogen generation; Quantum dot devices; Dye sensitized solar cells; Environmental remediation; Synthesis of functional nanomaterials; CO2 연료전환; 수소생산을 위한 광전기화학적 물분해; 양자점 태양전지; 염료감응 태양전지; 공해물질 저감연구; 기능성 나노소재 개발
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Department of Energy Science and Engineering Green and Renewable Energy for Endless Nature(GREEN) Lab 1. Journal Articles

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