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dc.contributor.authorFu, Zhongheng
dc.contributor.authorZhang, Hang
dc.contributor.authorSi, Chen
dc.contributor.authorLegut, Dominik
dc.contributor.authorGermann, Timothy Clark
dc.contributor.authorZhang, Qianfan
dc.contributor.authorDu, Shiyu
dc.contributor.authorFrancisco, Joseph S.
dc.contributor.authorZhang, Ruifeng
dc.date.accessioned2018-04-04T07:57:26Z
dc.date.available2018-04-04T07:57:26Z
dc.date.issued2018
dc.identifier.citationThe Journal of Physical Chemistry C. 2018, vol. 122, issue 8, p. 4710-4722.cs
dc.identifier.issn1932-7447
dc.identifier.urihttp://hdl.handle.net/10084/125576
dc.description.abstractRecently, two-dimensional (2D) materials with superior mechanical properties, unique electronic structures, and specific functionalities have stimulated considerable interest in designing novel flexible devices and multifunctional nanocomposites. However, high-throughput experiments and calculations, which are desirable for identifying those promising candidates with excellent strengths and flexibilities, remain a great challenge due to their difficulty and complexity. In the present work, a systematic investigation has been performed on the oxygen-functionalized 2D transition-metal carbides M2CO2 (M = Sc, Ti, V, Cr, Y, Zr, Nb, Mo, Hf, Ta, and W) to identify those with excellent thermodynamic stabilities and mechanical behaviors via high-throughput first-principle calculations. Our results suggest that the position and bonding/antibonding character of metallic d-band electrons play a vital role in stabilizing M2CO2, whose formation energy is below 0.2 eV/atom, a generally considered threshold observed for freestanding 2D materials, except for Sc2CO2, Y2CO2, and Cr2CO2. The synthetic effect from the surface stacking geometry and the delocalization character of d electrons provides a mechanistic quantification for periodic variation of elastic moduli and ideal strengths for M2CO2, whereas the strain-induced premature dynamic instabilities in different modes may intrinsically limit their achievable strengths, e.g., zone-center optical phonon instability for Hf2CO2 versus elastic instability for W2CO2. Detailed electronic structure analyses reveal that strong M-C bonds endow M2CO2 with excellent in-plane mechanical strengths but the appearance of different phonon instabilities when M changes from group IVB to group VIB may be attributed to the different filling characters of specific metal-d(xz) orbital or metal-d(z)(2) orbital. These findings resolve an apparent discrepancy for the preferred adsorption sites of the functional group and shed a novel view on the electronic origin of distinct mechanical strengths and flexibilities observed for different M2CO2.cs
dc.language.isoencs
dc.publisherAmerican Chemical Societycs
dc.relation.ispartofseriesThe Journal of Physical Chemistry Ccs
dc.relation.urihttps://doi.org/10.1021/acs.jpcc.8b00142cs
dc.rights© 2018 American Chemical Societycs
dc.titleMechanistic quantification of thermodynamic stability and mechanical strength for two-dimensional transition-metal carbidescs
dc.typearticlecs
dc.identifier.doi10.1021/acs.jpcc.8b00142
dc.type.statusPeer-reviewedcs
dc.description.sourceWeb of Sciencecs
dc.description.volume122cs
dc.description.issue8cs
dc.description.lastpage4722cs
dc.description.firstpage4710cs
dc.identifier.wos000426802500069


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