Quantum phase transition in a resonant level coupled to interacting leads.

dc.contributor.author

Mebrahtu, Henok T

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Borzenets, Ivan V

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Liu, Dong E

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Zheng, Huaixiu

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Bomze, Yuriy V

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Smirnov, Alex I

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Baranger, Harold U

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Finkelstein, Gleb

dc.date.accessioned

2019-12-22T00:38:22Z

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2019-12-22T00:38:22Z

dc.date.issued

2012-08

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2019-12-22T00:38:17Z

dc.description.abstract

A Luttinger liquid is an interacting one-dimensional electronic system, quite distinct from the 'conventional' Fermi liquids formed by interacting electrons in two and three dimensions. Some of the most striking properties of Luttinger liquids are revealed in the process of electron tunnelling. For example, as a function of the applied bias voltage or temperature, the tunnelling current exhibits a non-trivial power-law suppression. (There is no such suppression in a conventional Fermi liquid.) Here, using a carbon nanotube connected to resistive leads, we create a system that emulates tunnelling in a Luttinger liquid, by controlling the interaction of the tunnelling electron with its environment. We further replace a single tunnelling barrier with a double-barrier, resonant-level structure and investigate resonant tunnelling between Luttinger liquids. At low temperatures, we observe perfect transparency of the resonant level embedded in the interacting environment, and the width of the resonance tends to zero. We argue that this behaviour results from many-body physics of interacting electrons, and signals the presence of a quantum phase transition. Given that many parameters, including the interaction strength, can be precisely controlled in our samples, this is an attractive model system for studying quantum critical phenomena in general, with wide-reaching implications for understanding quantum phase transitions in more complex systems, such as cold atoms and strongly correlated bulk materials.

dc.identifier

nature11265

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0028-0836

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1476-4687

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https://hdl.handle.net/10161/19622

dc.language

eng

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Springer Science and Business Media LLC

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Nature

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10.1038/nature11265

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Science & Technology

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Multidisciplinary Sciences

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Science & Technology - Other Topics

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COULOMB-BLOCKADE

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TUNNEL-JUNCTIONS

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LUTTINGER LIQUID

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Quantum phase transition in a resonant level coupled to interacting leads.

dc.type

Journal article

duke.contributor.orcid

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

duke.contributor.orcid

Finkelstein, Gleb|0000-0002-0883-0741

pubs.begin-page

61

pubs.end-page

64

pubs.issue

7409

pubs.organisational-group

Trinity College of Arts & Sciences

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Duke

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Physics

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Duke Institute for Brain Sciences

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University Institutes and Centers

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Institutes and Provost's Academic Units

pubs.publication-status

Published

pubs.volume

488

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