Conductance of a dissipative quantum dot: Nonequilibrium crossover near a non-Fermi-liquid quantum critical point

dc.contributor.author

Zhang, Gu

dc.contributor.author

Novais, E

dc.contributor.author

Baranger, Harold U

dc.date.accessioned

2023-01-14T14:10:29Z

dc.date.available

2023-01-14T14:10:29Z

dc.date.issued

2021-10-25

dc.date.updated

2023-01-14T14:10:28Z

dc.description.abstract

We find the nonlinear conductance of a dissipative resonant level in the nonequilibrium steady state near its quantum critical point. The system consists of a spin-polarized quantum dot connected to two resistive leads that provide ohmic dissipation. We focus on the crossover from the strong-coupling, non-Fermi-liquid regime to the weak-coupling, Fermi-liquid ground state, a crossover driven by the instability of the quantum critical point to hybridization asymmetry or detuning of the level in the dot. We show that the crossover properties are given by tunneling through an effective single barrier described by the boundary sine-Gordon model. The nonlinear conductance is then obtained from thermodynamic Bethe ansatz results in the literature, which were developed to treat tunneling in a Luttinger liquid. The current-voltage characteristics are thus found for any value of the resistance of the leads. For the special case of lead resistance equal to the quantum resistance, we find mappings onto, first, the two-channel Kondo model and, second, an effectively noninteracting model from which the nonlinear conductance is found analytically. A key feature of the general crossover function is that the nonequilibrium crossover driven by applied bias is different from the crossover driven by temperature—we find that the nonequilibrium crossover is substantially sharper. Finally, we compare to experimental results for both the bias and temperature crossovers: the agreement is excellent.

dc.identifier.issn

2469-9950

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2469-9969

dc.identifier.uri

https://hdl.handle.net/10161/26447

dc.language

en

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American Physical Society (APS)

dc.relation.ispartof

Physical Review B

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10.1103/physrevb.104.165423

dc.subject

Quantum transport

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Nanostructures

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Quantum phase transition

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Nonequilibrium statistical mechanics

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Strongly correlated systems

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Kondo effect

dc.title

Conductance of a dissipative quantum dot: Nonequilibrium crossover near a non-Fermi-liquid quantum critical point

dc.type

Journal article

duke.contributor.orcid

Baranger, Harold U|0000-0002-1458-2756

pubs.begin-page

165423

pubs.end-page

165423

pubs.issue

16

pubs.organisational-group

Duke

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Trinity College of Arts & Sciences

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Physics

pubs.publication-status

Published online

pubs.volume

104

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