Radiative Properties of an Artificial Atom coupled to a Josephson
Junction Array
- URL: http://arxiv.org/abs/2205.14129v1
- Date: Fri, 27 May 2022 17:40:37 GMT
- Title: Radiative Properties of an Artificial Atom coupled to a Josephson
Junction Array
- Authors: Kanu Sinha, Saeed A. Khan, Elif C\"uce and Hakan E. T\"ureci
- Abstract summary: We study the radiative properties of an artificial atom coupled to a multimode cavity formed by an array of Josephson junctions.
Introducing a tunable coupling element between the atom and the array, we demonstrate that such a system can exhibit a crossover from a perturbative to non-perturbative regime of light-matter interaction.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: We study the radiative properties -- the Lamb shift, Purcell decay rate and
the spontaneous emission dynamics -- of an artificial atom coupled to a long,
multimode cavity formed by an array of Josephson junctions. Introducing a
tunable coupling element between the atom and the array, we demonstrate that
such a system can exhibit a crossover from a perturbative to non-perturbative
regime of light-matter interaction as one strengthens the coupling between the
atom and the Josephson junction array (JJA). As a consequence, the concept of
spontaneous emission as the occupation of the local atomic site being governed
by a single complex-valued exponent breaks down. This breakdown, we show, can
be interpreted in terms of formation of hybrid atom-resonator modes with
radiative losses that are non-trivially related to the effective coupling
between individual modes. We develop a singular function expansion approach for
the description of the open quantum system dynamics in such a multimode
non-perturbative regime. This modal framework generalizes the normal mode
description of quantum fields in a finite volume, incorporating exact radiative
losses and incident quantum noise at the delimiting surface. Our results are
pertinent to recent experiments with Josephson atoms coupled to high impedance
Josephson junction arrays.
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