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Engineering Higher-Order Dirac and Weyl Semimetallic phase in 3D Topolectrical Circuits

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arxiv 2303.10911 v2 pith:EBHKWU44 submitted 2023-03-20 cond-mat.mes-hall cond-mat.mtrl-sci

classification cond-mat.mes-hallcond-mat.mtrl-sci
keywords diracfirst-higher-ordersecond-orderweylchiralcircuithinge
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We propose a 3D topolectrical (TE) network that can be tuned to realize various higher-order topological gapless and chiral phases. We first study a higher-order Dirac semimetal phase that exhibits a hinge-like Fermi arc linking the Dirac points. This circuit can be extended to host highly tunable first- and second-order Weyl semimetal phases by introducing a non-reciprocal resistive coupling in the x-y plane that breaks time reversal symmetry. The first- and second-order Weyl points are connected by zero-admittance surface and hinge states, respectively. We also study the emergence of first- and second-order chiral modes induced by resistive couplings between similar nodes in the z-direction. These modes respectively occur in the midgap of the surface and hinge admittance bands in our circuit model without the need for any external magnetic field.

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  1. Reconfigurable Defect States in Non-Hermitian Topolectrical Chains with Gain and Loss

    cond-mat.mes-hall 2025-05 conditional novelty 6.0 of 10

    In a non-Hermitian SSH chain with non-reciprocal hopping, staggered gain/loss tunes defect-state localization between the defect site, the chain edges, or suppression.

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