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dc.contributor.authorYao, B. N.
dc.contributor.authorLiu, Z. R.
dc.contributor.authorLegut, Dominik
dc.contributor.authorZhang, R. F.
dc.date.accessioned2024-03-20T07:06:09Z
dc.date.available2024-03-20T07:06:09Z
dc.date.issued2023
dc.identifier.citationPhysical Review B. 2023, vol. 108, issue 2, art. no. 024108.cs
dc.identifier.issn2469-9950
dc.identifier.issn2469-9969
dc.identifier.urihttp://hdl.handle.net/10084/152378
dc.description.abstractPair-functional potentials are generally used for metallic solids, whereas cluster potentials are more appropriate for covalent solids; however, both face critical difficulties that cannot be solved based purely on the optimization of potential functions, e.g., the lattice stability for hcp metals with high c/a ratios and the conflict between stacking-fault energy and cleavage energy for covalent solids, which can be attributed to their respective physical foundations and approximations according to their bonding characteristics. By incorporating the long-range many-body effect in pair-functional potentials and the short-range angular-dependent terms in cluster potentials, a unified hybrid potential model is physically justified and proposed in the present study for both metallic and covalent bonding solids to resolve the aforementioned critical issues and other specific cases. The proposed model was not only successfully demonstrated for a series of elemental solids, including 20 fcc, bcc, and hcp metals and three covalent elements, but also was extended to construct cross potentials for three representative compound systems, i.e., CuNi, TiC, and BN, which suggests that the present hybrid potential model possess higher compatibility and feasibility for various metallic and covalent systems than the respective pair-functional potentials and cluster ones. Overall, the hybrid potential model not only complements the current potential library but also builds a foundation for further potential development with high flexibility.cs
dc.language.isoencs
dc.publisherAmerican Physical Societycs
dc.relation.ispartofseriesPhysical Review Bcs
dc.relation.urihttps://doi.org/10.1103/PhysRevB.108.024108cs
dc.rights© 2023 American Physical Societycs
dc.titleHybrid potential model with high feasibility and flexibility for metallic and covalent solidscs
dc.typearticlecs
dc.identifier.doi10.1103/PhysRevB.108.024108
dc.type.statusPeer-reviewedcs
dc.description.sourceWeb of Sciencecs
dc.description.volume108cs
dc.description.issue2cs
dc.description.firstpageart. no. 024108cs
dc.identifier.wos001061021000002


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