Particle Production in Ultrastrong-Coupling Waveguide QED
Abstract
Understanding large-scale interacting quantum matter requires dealing with the huge
number of quanta that are produced by scattering even a few particles against a complex
quantum object. Prominent examples are found from high-energy cosmic ray showers,
to the optical or electrical driving of degenerate Fermi gases. We tackle this challenge
in the context of many-body quantum optics, as motivated by the recent developments
of circuit quantum electrodynamics at ultrastrong coupling. The issue of particle
production is addressed quantitatively with a simple yet powerful concept rooted in
the quantum superposition principle of multimode coherent states. This key idea is
illustrated by the study of multiphoton emission from a single two-level artificial
atom coupled to a high impedance waveguide, driven by a nearly monochromatic coherent
tone. We find surprisingly that the off-resonant inelastic emission line shape is
dominated by broadband particle production, due to the large phase space associated
with contributions that do not conserve the number of excitations. Such frequency
conversion processes produce striking signatures in time correlation measurements,
which can be tested experimentally in quantum waveguides. These ideas open new directions
for the simulation of a variety of physical systems, from polaron dynamics in solids
to complex superconducting quantum architectures.
Type
Journal articleSubject
Science & TechnologyPhysical Sciences
Optics
Physics, Atomic, Molecular & Chemical
Physics
QUANTUM ELECTRODYNAMICS
DYNAMICS
STATES
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https://hdl.handle.net/10161/26452Published Version (Please cite this version)
10.1103/physreva.98.043816Publication Info
Gheeraert, Nicolas; Zhang, Xin HH; Sépulcre, Théo; Bera, Soumya; Roch, Nicolas; Baranger,
Harold U; & Florens, Serge (2018). Particle Production in Ultrastrong-Coupling Waveguide QED. Physical Review A, 98(4). pp. 043816-043816. 10.1103/physreva.98.043816. Retrieved from https://hdl.handle.net/10161/26452.This is constructed from limited available data and may be imprecise. To cite this
article, please review & use the official citation provided by the journal.
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Show full item recordScholars@Duke
Harold U. Baranger
Professor of Physics
The broad focus of Prof. Baranger's group is quantum open systems at the nanoscale,
particularly the generation of correlation between particles in such systems. Fundamental
interest in nanophysics-- the physics of small, nanometer scale, bits of solid-- stems
from the ability to control and probe systems on length scales larger than atoms but
small enough that the averaging inherent in bulk properties has not yet occurred.
Using this ability, entirely unanticipated phenomena ca
Xin Zhang
Affiliate
I publish with the name Xin H. H. Zhang.My ORCID: https://orcid.org/0000-0002-2972-0402My
webpage: https://sites.google.com/view/xinzhang/home
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