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Anisotropic Interlayer Force Field for Transition Metal Dichalcogenides: The Case of Molybdenum Disulfide
Author(s) -
Wengen Ouyang,
Reut Sofer,
Xiang Gao,
Jan Hermann,
Alexandre Tkatchenko,
Leeor Kronik,
Michael Urbakh,
Oded Hod
Publication year - 2021
Publication title -
journal of chemical theory and computation
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.001
H-Index - 185
eISSN - 1549-9626
pISSN - 1549-9618
DOI - 10.1021/acs.jctc.1c00782
Subject(s) - molybdenum disulfide , molybdenum , transition metal , anisotropy , force field (fiction) , materials science , nanotechnology , disulfide bond , chemical physics , field (mathematics) , metal , molecular dynamics , condensed matter physics , chemistry , computational chemistry , physics , metallurgy , optics , biochemistry , mathematics , pure mathematics , catalysis , quantum mechanics
An anisotropic interlayer force field that describes the interlayer interactions in molybdenum disulfide (MoS 2 ) is presented. The force field is benchmarked against density functional theory calculations for both bilayer and bulk systems within the Heyd-Scuseria-Ernzerhof hybrid density functional approximation, augmented by a nonlocal many-body dispersion treatment of long-range correlation. The parametrization yields good agreement with the reference calculations of binding energy curves and sliding potential energy surfaces for both bilayer and bulk configurations. Benchmark calculations for the phonon spectra of bulk MoS 2 provide good agreement with experimental data, and the calculated bulk modulus falls in the lower part of experimentally measured values. This indicates the accuracy of the interlayer force field near equilibrium. Under external pressures up to 20 GPa, the developed force field provides a good description of compression curves. At higher pressures, deviations from experimental data grow, signifying the validity range of the developed force field.

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