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Active topolectrical circuits

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arxiv 1903.10130 v5 pith:JWXKR6S7 submitted 2019-03-25 cond-mat.other cond-mat.dis-nnnlin.AOphysics.app-ph

classification cond-mat.othercond-mat.dis-nnnlin.AOphysics.app-ph
keywords circuitsactiveprotectedatcsautonomoustopolectricaledgenonlinear
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The transfer of topological concepts from the quantum world to classical mechanical and electronic systems has opened fundamentally new approaches to protected information transmission and wave guidance. A particularly promising technology are recently discovered topolectrical circuits that achieve robust electric signal transduction by mimicking edge currents in quantum Hall systems. In parallel, modern active matter research has shown how autonomous units driven by internal energy reservoirs can spontaneously self-organize into collective coherent dynamics. Here, we unify key ideas from these two previously disparate fields to develop design principles for active topolectrical circuits (ATCs) that can self-excite topologically protected global signal patterns. Realizing autonomous active units through nonlinear Chua diode circuits, we theoretically predict and experimentally confirm the emergence of self-organized protected edge oscillations in one- and two-dimensional ATCs. The close agreement between theory, simulations and experiments implies that nonlinear ATCs provide a robust and versatile platform for developing high-dimensional autonomous electrical circuits with topologically protected functionalities.

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Cited by 2 Pith papers

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    An explicit N=1 supersymmetric action exists for nonreciprocal stochastic processes: re-representing the MSR functional determinant via a Pfaffian identity yields a manifest supercharge whose square is the Hamiltonian.

  2. Electric Circuit Realizations of Fracton Physics

    cond-mat.str-el 2019-08 conditional novelty 7.0 of 10

    Networks of capacitors connected by ideal transformers conserve dipole moment, making electric charge immobile like fractons, with a linear steady-state charge profile.

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