Ultrathin transition metal oxychalcogenide catalysts for oxygen evolution in acidic media.
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Peer-reviewed
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Abstract
Two-dimensional transition metal dichalcogenides (TMDs) exfoliated from bulk layered materials possess interesting properties. Most transition metal oxides are not layered and therefore cannot be exfoliated. Here we report the synthesis of a family of ultrathin materials-transition metal oxychalcogenides (TMOCs)-and demonstrate their unique properties. Two-dimensional TMOCs (MX x O y , M = group IV or V transition metal, X = chalcogen, O = oxygen; x, y = 0-2) from bulk transition metal dichalcogenides (MX2) have been fabricated using tetrabutylammonium intercalation. The stoichiometry of TMOCs can be adjusted, which enables control of their optical bandgaps and tunability of electrical conductivity by more than eight orders of magnitude. By tuning the chalcogen-to-oxygen ratio along with local atomic structure in TMOCs, it is possible to impart unexpected properties. For example, in contrast to conventional TMDs, the hybrid structure of TMOCs renders them surprisingly stable and electrochemically active in strong acids, allowing them to be used as proof-of-concept catalysts for the oxygen evolution reaction at pH ≈ 0. The HfS0.52O1.09 catalyst shows high mass activity (103,000 A g-1 at an overpotential of 0.5 V) and exhibits durability in proton exchange membrane water electrolysers.
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Acknowledgements: This work was supported by the Royal Society of the UK (AL/211043). M.C. and W.X. acknowledge the Engineering and Physical Sciences Research Council (EPSRC, EP/V012932/1). Y. Wu acknowledges the Facility for Analysis, Characterization, Testing and Simulation (FACTS), Nanyang Technological University, Singapore, for use of their electron microscopy facilities. S.X. is grateful for support provided by the State Key Laboratory of Materials-Oriented Chemical Engineering-Open Fund (KL20-07). X.W. thanks the National Natural Science Foundation of China (NSFC-52372054), the Guangdong Provincial Key Laboratory Program of the Guangdong Science and Technology Department (2021B1212040001) and the Youth Innovation Promotion Association, Chinese Academy of Sciences. K.P.L. is grateful for a grant from the Centre for Hydrogen Innovation (CHI-P2022-01). F.D. thanks the National Natural Science Foundation of China (NSFC-22333005) and the High Talent Support from Shenzhen Institute of Advanced Technology (SE3G0991010) and is grateful for a startup grant from Shenzhen University of Advanced Technology.
Funder: Youth Innovation Promotion Association, Chinese Academy of Sciences
Funder: Centre for Hydrogen Innovation (CHI-P2022-01)
Funder: High Talent Support from Shenzhen Institute of Advanced Technology (SE3G0991010) Startup grant from Shenzhen University of Advanced Technology
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2731-0582

