Highly efficient electrocatalytic hydrogen evolution promoted by O-Mo-C interfaces of ultrafine β-Mo<inf>2</inf>C nanostructures

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dc.contributor.author Ma, S en
dc.contributor.author Yang, H en
dc.contributor.author Chen, X en
dc.contributor.author Hu, G en
dc.contributor.author Chen, Wan-Ting en
dc.contributor.author Bradley, SJ en
dc.contributor.author Zhang, W en
dc.contributor.author Verma, G en
dc.contributor.author Nann, T en
dc.contributor.author Jiang, DE en
dc.contributor.author Kruger, PE en
dc.contributor.author Wang, X en
dc.contributor.author Tian, H en
dc.contributor.author Waterhouse, Geoffrey en
dc.contributor.author Telfer, SG en
dc.date.accessioned 2020-06-15T04:34:19Z en
dc.date.issued 2020-04-07 en
dc.identifier.citation Chemical Science 11(13):3523-3530 07 Apr 2020 en
dc.identifier.issn 2041-6520 en
dc.identifier.uri http://hdl.handle.net/2292/51563 en
dc.description.abstract © 2020 The Royal Society of Chemistry. Optimizing interfacial contacts and thus electron transfer phenomena in heterogeneous electrocatalysts is an effective approach for enhancing electrocatalytic performance. Herein, we successfully synthesized ultrafine β-Mo2C nanoparticles confined within hollow capsules of nitrogen-doped porous carbon (β-Mo2C@NPCC) and found that the surface layer of molybdenum atoms was further oxidized to a single Mo-O surface layer, thus producing intimate O-Mo-C interfaces. An arsenal of complementary technologies, including XPS, atomic-resolution HAADF-STEM, and XAS analysis clearly reveals the existence of O-Mo-C interfaces for these surface-engineered ultrafine nanostructures. The β-Mo2C@NPCC electrocatalyst exhibited excellent electrocatalytic activity for the hydrogen evolution reaction (HER) in water. Theoretical studies indicate that the highly accessible ultrathin O-Mo-C interfaces serving as the active sites are crucial to the HER performance and underpinned the outstanding electrocatalytic performance of β-Mo2C@NPCC. This proof-of-concept study opens a new avenue for the fabrication of highly efficient catalysts for HER and other applications, whilst further demonstrating the importance of exposed interfaces and interfacial contacts in efficient electrocatalysis. en
dc.relation.ispartofseries Chemical Science en
dc.rights Items in ResearchSpace are protected by copyright, with all rights reserved, unless otherwise indicated. Previously published items are made available in accordance with the copyright policy of the publisher. en
dc.rights.uri https://researchspace.auckland.ac.nz/docs/uoa-docs/rights.htm en
dc.rights.uri https://creativecommons.org/licenses/by-nc/3.0/ en
dc.title Highly efficient electrocatalytic hydrogen evolution promoted by O-Mo-C interfaces of ultrafine β-Mo<inf>2</inf>C nanostructures en
dc.type Journal Article en
dc.identifier.doi 10.1039/d0sc00427h en
pubs.issue 13 en
pubs.begin-page 3523 en
pubs.volume 11 en
dc.rights.holder Copyright: The Royal Society of Chemistry en
pubs.end-page 3530 en
pubs.publication-status Published en
dc.rights.accessrights http://purl.org/eprint/accessRights/OpenAccess en
pubs.subtype Journal Article en
pubs.elements-id 798322 en
pubs.org-id Science en
pubs.org-id Chemistry en
dc.identifier.eissn 2041-6539 en


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