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Phase-controlled 1T/2H-MoS2interaction with reduced TiO2for highly stable photocatalytic CO2reduction into CO

Title
Phase-controlled 1T/2H-MoS2interaction with reduced TiO2for highly stable photocatalytic CO2reduction into CO
Author(s)
Park, Young HoKim, DongyunHiragond, Chaitanya B.Lee, JunhoJung, Jin-WooCho, Chang-HeeIn, InsikIn, Su-Il
Issued Date
2023-01
Citation
Journal of CO2 Utilization, v.67
Type
Article
Author Keywords
Phase controlMolybdenum disulfide2-dimensional materialPhotocatalystCO2 reduction
Keywords
HETEROJUNCTION PHOTOCATALYSTSVISIBLE-LIGHTBLACK TIO2NANOTUBE ARRAYSHYDROGEN EVOLUTIONCATALYTIC-ACTIVITYMOS2NANOPARTICLESFABRICATIONTRANSITION
ISSN
2212-9820
Abstract
Photocatalytic CO2 reduction is a potential technique for converting solar energy and greenhouse gases into value-added-chemicals. However, limited light absorption and poor charge separation of electron-hole pairs are the main obstacles. Here, we have developed a highly stable, phase-controlled heterostructured photocatalyst of molybdenum sulfide with reduced titania (1T/2H-MoS2@RT) for CO2 reduction into CO. The optimized 1T/2H-MoS2@RT produced 1.02 μmol g-1 h-1 (1480.1 ppm g-1 h-1) of CO. The catalyst showed ∼5 and ∼19 times higher activity than RT and MoS2, respectively, and excellent stability over 48 h (8 cycles). Our investigation revealed that the combination of phase-controlled MoS2 with RT synergizes the selective conversion of CO2 to CO. MoS2 acts as a visible light sensitizer and electron transport bridge; however, RT extracts electrons from MoS2 because of its lower energy potential. Improved light absorption, CO2 adsorption, and rapid electron-hole separation are responsible for the increased catalytic activity and stability. © 2022 The Authors.
URI
http://hdl.handle.net/20.500.11750/17296
DOI
10.1016/j.jcou.2022.102324
Publisher
Elsevier Ltd
Related Researcher
  • 조창희 Cho, Chang-Hee
  • Research Interests Semiconductor; Nanophotonics; Light-Matter Interaction
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Appears in Collections:
Department of Physics and Chemistry Future Semiconductor Nanophotonics Laboratory 1. Journal Articles
Department of Energy Science and Engineering Green and Renewable Energy for Endless Nature(GREEN) Lab 1. Journal Articles

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