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dc.contributor.authorPeng, Zhang
dc.contributor.authorXuejing, Yang
dc.contributor.authorXiuli, Hou
dc.contributor.authorXuejian, Xu
dc.contributor.authorBeibei, Xiao
dc.contributor.authorJun, Huang
dc.contributor.authorCatherine, Stampfl
dc.date.accessioned2021-02-01T04:17:45Z
dc.date.available2021-02-01T04:17:45Z
dc.date.issued2019en_AU
dc.identifier.urihttps://hdl.handle.net/2123/24393
dc.description.abstractPolypyridyl transition metal complexes are well-established homogeneous electrocatalysts for the reduction of CO2. In this work, the relationship between the transition metal (including V, Cr, Mn, Nb, Mo, Ta, W, and Re) and the catalytic activity has been theoretically investigated using density functional theory. It is found that the transition metal center determines the catalytic activity of M(bpy)(CO)4. Among the eight metal complexes, Re(bpy)(CO)4 and Mn(bpy)(CO)4 exhibit better catalytic activity due to the weaker adsorption strength of CO and lower d-band center, which makes it easier to activate the metal complex and results in a lower reaction free energy of the rate-determining step at the reduction potential. We believe that these results can provide guidelines for the design of novel electrocatalysts for CO2 reduction.en_AU
dc.publisherThe Royal Society of Chemistryen_AU
dc.relation.ispartofPhysical Chemistry Chemical Physicsen_AU
dc.rightsCopyright All Rights Reserveden_AU
dc.titleMetal-bipyridine complexes as electrocatalysts for the reduction of CO2: a density functional theorystudyen_AU
dc.typeArticleen_AU
dc.identifier.doi10.1039/C9CP02916H
dc.relation.arcDP150103842
usyd.facultySeS faculties schools::Faculty of Engineeringen_AU
usyd.citation.issue42en_AU
workflow.metadata.onlyNoen_AU


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