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Duality between different geometries of a resonant level in a Luttinger liquid

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arxiv 0907.0424 v2 pith:B4LLAN6R submitted 2009-07-02 cond-mat.mes-hall cond-mat.str-el

classification cond-mat.mes-hallcond-mat.str-el
keywords dualitylevelliquidluttingertransportbiasgeometriesquantum
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We prove an exact duality between the side-coupled and embedded geometries of a single level quantum dot attached to a quantum wire in a Luttinger liquid phase by a tunneling term and interactions. This is valid even in the presence of a finite bias voltage. Under this relation the Luttinger liquid parameter g goes into its inverse, and transmittance maps onto reflectance. We then demonstrate how this duality is revealed by the transport properties of the side-coupled case. Conductance is found to exhibit an antiresonance as a function of the level energy, whose width vanishes (enhancing transport) as a power law for low temperature and bias voltage whenever g>1, and diverges (suppressing transport) for g<1. On resonance transmission is always destroyed, unless g is large enough.

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  1. Driven quantum dot coupled to a fractional quantum Hall edge

    cond-mat.str-el 2019-08 conditional novelty 6.0 of 10

    A second-order perturbation theory, in both bosonized and spin-boson forms, gives the early-time current on a driven quantum dot-fractional quantum Hall edge system and predicts a phase shift for sinusoidal bias.

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