Rational Design of Two-Dimensional Transition Metal Carbide/Nitride (MXene) Hybrids and Nanocomposites for Catalytic Energy Storage and Conversion

dc.contributor.authorLim, Kang Rui Garrick
dc.contributor.authorHandoko, Albertus D.
dc.contributor.authorNemani, Srinivasa Kartik
dc.contributor.authorWyatt, Brian
dc.contributor.authorJiang, Hai-Ying
dc.contributor.authorTang, Junwang
dc.contributor.authorAnasori, Babak
dc.contributor.authorSeh, Zhi Wei
dc.contributor.departmentEngineering Technology, School of Engineering and Technologyen_US
dc.date.accessioned2020-10-02T21:14:08Z
dc.date.available2020-10-02T21:14:08Z
dc.date.issued2020-08
dc.description.abstractElectro-, photo-, and photoelectrocatalysis play a critical role toward the realization of a sustainable energy economy. They facilitate numerous redox reactions in energy storage and conversion systems, enabling the production of chemical feedstock and clean fuels from abundant resources like water, carbon dioxide, and nitrogen. One major obstacle for their large-scale implementation is the scarcity of cost-effective, durable, and efficient catalysts. A family of two-dimensional transition metal carbides, nitrides, and carbonitrides (MXenes) has recently emerged as promising earth-abundant candidates for large-area catalytic energy storage and conversion due to their unique properties of hydrophilicity, high metallic conductivity, and ease of production by solution processing. To take full advantage of these desirable properties, MXenes have been combined with other materials to form MXene hybrids with significantly enhanced catalytic performances beyond the sum of their individual components. MXene hybridization tunes the electronic structure toward optimal binding of redox active species to improve intrinsic activity while increasing the density and accessibility of active sites. This review outlines recent strategies in the design of MXene hybrids for industrially relevant electrocatalytic, photocatalytic, and photoelectrocatalytic applications such as water splitting, metal–air/sulfur batteries, carbon dioxide reduction, and nitrogen reduction. By clarifying the roles of individual material components in the MXene hybrids, we provide design strategies to synergistically couple MXenes with associated materials for highly efficient and durable catalytic applications. We conclude by highlighting key gaps in the current understanding of MXene hybrids to guide future MXene hybrid designs in catalytic energy storage and conversion applications.en_US
dc.eprint.versionAuthor's manuscripten_US
dc.identifier.citationLim, K. R. G., Handoko, A. D., Nemani, S. K., Wyatt, B., Jiang, H.-Y., Tang, J., Anasori, B., & Seh, Z. W. (2020). Rational Design of Two-Dimensional Transition Metal Carbide/Nitride (MXene) Hybrids and Nanocomposites for Catalytic Energy Storage and Conversion. ACS Nano, 14(9), 10834–10864. https://doi.org/10.1021/acsnano.0c05482en_US
dc.identifier.urihttps://hdl.handle.net/1805/23981
dc.language.isoenen_US
dc.publisherACSen_US
dc.relation.isversionof10.1021/acsnano.0c05482en_US
dc.relation.journalACS Nanoen_US
dc.rightsPublisher Policyen_US
dc.sourceAuthoren_US
dc.subjectMXenesen_US
dc.subjecthybrid materialen_US
dc.subjectelectrocatalysisen_US
dc.titleRational Design of Two-Dimensional Transition Metal Carbide/Nitride (MXene) Hybrids and Nanocomposites for Catalytic Energy Storage and Conversionen_US
dc.typeArticleen_US
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