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Transport signatures of Fermi arcs at twin boundaries in Weyl materials

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arxiv 2207.14109 v1 pith:GO6G7BZQ submitted 2022-07-28 cond-mat.mes-hall cond-mat.mtrl-sci

classification cond-mat.mes-hallcond-mat.mtrl-sci
keywords arcsfermiinternalmaterialssignaturesweylboundariespropose
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One of the most striking signatures of Weyl fermions is their surface Fermi arcs. Less known is that Fermi arcs can also be localized at internal twin boundaries where two Weyl materials of opposite chirality meet. In this work, we derive constraints on the topology and connectivity of these "internal Fermi arcs." We show that internal Fermi arcs can exhibit transport signatures and propose two probes: quantum oscillations and a quantized chiral magnetic current. We propose merohedrally twinned B20 materials as candidates to host internal Fermi arcs, verified through both model and ab initio calculations. Our theoretical investigation sheds lights on the topological features and motivates experimental studies into the intriguing physics of internal Fermi arcs.

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  1. Tuning Quantum States at Chirality-Reversed Planar Interface in Weyl Semimetals using an Interstitial Layer

    cond-mat.mes-hall 2025-01 conditional novelty 6.0 of 10

    A magnetic interstitial layer at a chirality-reversed interface in a Weyl semimetal can tune Fermi-arc bound states, spin-filter transmitted electrons, and control interface conductance.

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