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Topological Singularity Induced Chiral Kohn Anomaly in a Weyl Semimetal

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arxiv 1906.00539 v2 pith:FDS5AGX6 submitted 2019-06-03 cond-mat.mtrl-sci cond-mat.mes-hall

classification cond-mat.mtrl-scicond-mat.mes-hall
keywords anomalykohntopologicalphononweylchiraleffectsfermi
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The electron-phonon interaction (EPI) is instrumental in a wide variety of phenomena in solid-state physics, such as electrical resistivity in metals, carrier mobility, optical transition and polaron effects in semiconductors, lifetime of hot carriers, transition temperature in BCS superconductors, and even spin relaxation in diamond nitrogen-vacancy centers for quantum information processing. However, due to the weak EPI strength, most phenomena have focused on electronic properties rather than on phonon properties. One prominent exception is the Kohn anomaly, where phonon softening can emerge when the phonon wavevector nests the Fermi surface of metals. Here we report a new class of Kohn anomaly in a topological Weyl semimetal (WSM), predicted by field-theoretical calculations, and experimentally observed through inelastic x-ray and neutron scattering on WSM tantalum phosphide (TaP). Compared to the conventional Kohn anomaly, the Fermi surface in a WSM exhibits multiple topological singularities of Weyl nodes, leading to a distinct nesting condition with chiral selection, a power-law divergence, and non-negligible dynamical effects. Our work brings the concept of Kohn anomaly into WSMs and sheds light on elucidating the EPI mechanism in emergent topological materials.

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  1. Soft phonons and ultralow lattice thermal conductivity in the Dirac semimetal Cd3As2

    cond-mat.mtrl-sci 2019-08 conditional novelty 6.0 of 10

    Soft optical phonon modes in Cd3As2 enhance acoustic-phonon scattering and account for its ultralow, non-monotonically temperature-dependent lattice thermal conductivity.

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