Exciting a Bound State in the Continuum through Multiphoton Scattering Plus Delayed Quantum Feedback.

dc.contributor.author

Calajó, Giuseppe

dc.contributor.author

Fang, Yao-Lung L

dc.contributor.author

Baranger, Harold U

dc.contributor.author

Ciccarello, Francesco

dc.date.accessioned

2023-01-14T14:15:28Z

dc.date.available

2023-01-14T14:15:28Z

dc.date.issued

2019-02

dc.date.updated

2023-01-14T14:15:27Z

dc.description.abstract

Excitation of a bound state in the continuum (BIC) through scattering is problematic since it is by definition uncoupled. Here, we consider a type of dressed BIC and show that it can be excited in a nonlinear system through multiphoton scattering and delayed quantum feedback. The system is a semi-infinite waveguide with linear dispersion coupled to a qubit, in which a single-photon, dressed BIC is known to exist. We show that this BIC can be populated via multiphoton scattering in the non-Markovian regime, where the photon delay time (due to the qubit-mirror distance) is comparable with the qubit's decay. A similar process excites the BIC existing in an infinite waveguide coupled to two distant qubits, thus yielding stationary entanglement between the qubits. This shows, in particular, that single-photon trapping via multiphoton scattering can occur without band edge effects or cavities, the essential resource being instead the delayed quantum feedback provided by a single mirror or the emitters themselves.

dc.identifier.issn

0031-9007

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1079-7114

dc.identifier.uri

https://hdl.handle.net/10161/26450

dc.language

eng

dc.publisher

American Physical Society (APS)

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Physical review letters

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10.1103/physrevlett.122.073601

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Science & Technology

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Physical Sciences

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Physics, Multidisciplinary

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Physics

dc.title

Exciting a Bound State in the Continuum through Multiphoton Scattering Plus Delayed Quantum Feedback.

dc.type

Journal article

duke.contributor.orcid

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

pubs.begin-page

073601

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7

pubs.organisational-group

Duke

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Trinity College of Arts & Sciences

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Physics

pubs.publication-status

Published

pubs.volume

122

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