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Ab initio study of lattice dynamics of group IV semiconductors using pseudohybrid functionals for extended Hubbard interactions

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arxiv 2106.07201 v1 pith:6KA437EU submitted 2021-06-14 cond-mat.mtrl-sci

classification cond-mat.mtrl-sci
keywords functionalshubbardlatticeextendedlocalsemiconductorscalculationscompared
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We study the lattice dynamics of group IV semiconductors using fully ab-initio extended Hubbard functional. The onsite and intersite Hubbard interactions are determined self-consistently with recently developed pseudohybrid functionals and included in force calculations. We analyze the Pulay forces by the choice of atomic orbital projectors and the force contribution of the onsite and intersite Hubbard terms. The phonon dispersions, Gruneisen parameters, and lattice thermal conductivities of diamond, silicon, and germanium, which are most-representative covalent-bonding semiconductors, are calculated and compared with the results using local, semilocal, and hybrid functionals. The extended Hubbard functional produces increased phonon velocities and lifetimes, and thus lattice thermal conductivities compared to local and semilocal functionals, agreeing with experiments very well. Considering that our computational demand is comparable to simple local functionals, this work thus suggests a way to perform high-throughput electronic and structural calculations with a higher accuracy.

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  1. First-principles carrier mobility and optical absorption of strained ZnO with self-consistent Hubbard interactions

    cond-mat.mtrl-sci 2026-07 conditional novelty 6.0 of 10

    Using DFPT+U, uniaxial tensile strain of 4.8% along [\bar110] is predicted to raise room-temperature electron mobility of ZnO by 19% without changing visible-light absorption.

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