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dc.contributor.author Kim, Mun Kyoung -
dc.contributor.author Lee, Hojeong -
dc.contributor.author Won, Jong Ho -
dc.contributor.author Sim, Woohyeong -
dc.contributor.author Kang, Shin Joon -
dc.contributor.author Choi, Hansaem -
dc.contributor.author Sharma, Monika -
dc.contributor.author Oh, Hyung-Suk -
dc.contributor.author Ringe, Stefan -
dc.contributor.author Kwon, Youngkook -
dc.contributor.author Jeong, Hyung Mo -
dc.date.accessioned 2021-11-23T08:00:22Z -
dc.date.available 2021-11-23T08:00:22Z -
dc.date.created 2021-11-04 -
dc.date.issued 2022-02 -
dc.identifier.issn 1616-301X -
dc.identifier.uri http://hdl.handle.net/20.500.11750/15841 -
dc.description.abstract Electrochemical carbon dioxide reduction reaction (CO2RR) is a promising approach to mitigate CO2 concentration and generate carbon feedstock. Recently, the (sub-)nanometer design of catalyst structures has been revealed as an efficient means to control the reaction process through the local reaction environment. Herein, the synthesis of a novel tin oxide (SnOx) nanoparticle (NP) catalyst with highly controlled sub-nanoscale interplanar gaps of widths <1 nm (SnOx NP-s) is reported via the lithium electrochemical tuning (LiET) method. Transmission electron microscopy (TEM) and 3D-tomo-scanning TEM (STEM) analysis confirm the presence of a distinct segmentation pattern and the newly engineered interparticle confined space in the SnOx NP-s. The catalyst exhibits a significant increase in CO2RR versus hydrogen evolution selectivity by a factor of approximate to 5 with 20% higher formate selectivity relative to pristine SnO2 NPs at -1.2 V-RHE. Density functional theory calculations and cation-size-dependent experiments indicate that this is attributable to a gap-stabilization of the rate-limiting *OCHO and *COOH intermediates, the formation of which is driven by the interfacial electric field. Moreover, the SnOx NP-s exhibits stable performance during CO2RR over 50 h. These results highlight the potential of controlled atomic spaces in directing electrochemical reaction selectivity and the design of highly optimized catalytic materials. -
dc.language English -
dc.publisher John Wiley & Sons Ltd. -
dc.title Design of less than 1 nm Scale Spaces on SnO2 Nanoparticles for High-Performance Electrochemical CO2 Reduction -
dc.type Article -
dc.identifier.doi 10.1002/adfm.202107349 -
dc.identifier.wosid 000710100000001 -
dc.identifier.scopusid 2-s2.0-85119376329 -
dc.identifier.bibliographicCitation Advanced Functional Materials, v.32, no.8 -
dc.description.isOpenAccess FALSE -
dc.subject.keywordAuthor density functional theory -
dc.subject.keywordAuthor electrochemical carbon dioxide reduction -
dc.subject.keywordAuthor space confinement -
dc.subject.keywordAuthor sub-nanospacing -
dc.subject.keywordAuthor 3D tomography -
dc.subject.keywordPlus CARBON-DIOXIDE -
dc.subject.keywordPlus FORMIC-ACID -
dc.subject.keywordPlus ENHANCED ACTIVITY -
dc.subject.keywordPlus GRAIN-BOUNDARIES -
dc.subject.keywordPlus MESOPOROUS SNO2 -
dc.subject.keywordPlus HIGH-EFFICIENCY -
dc.subject.keywordPlus LIQUID FUEL -
dc.subject.keywordPlus ELECTROREDUCTION -
dc.subject.keywordPlus SELECTIVITY -
dc.subject.keywordPlus ELECTRODES -
dc.citation.number 8 -
dc.citation.title Advanced Functional Materials -
dc.citation.volume 32 -
dc.description.journalRegisteredClass scie -
dc.description.journalRegisteredClass scopus -
dc.relation.journalResearchArea Chemistry; Science & Technology - Other Topics; Materials Science; Physics -
dc.relation.journalWebOfScienceCategory Chemistry, Multidisciplinary; Chemistry, Physical; Nanoscience & Nanotechnology; Materials Science, Multidisciplinary; Physics, Applied; Physics, Condensed Matter -
dc.type.docType Article -
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Department of Energy Science and Engineering Ab initio multi-scale engineering Lab(AIMS-E Lab) 1. Journal Articles

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