Theory of Josephson Arrays in a Resonant Cavity
E. Almaas (Univ. of Notre Dame), D. Stroud (Ohio State Univ.)

TL;DR
This paper reviews the dynamics of Josephson junction arrays in a resonant cavity, highlighting phenomena like self-induced resonant steps, array coherence thresholds, and polarization effects, with numerical results aligning with experimental observations.
Contribution
It provides a comprehensive theoretical framework and numerical analysis of Josephson array-cavity interactions, including new insights into polarization effects and array coherence.
Findings
Observation of self-induced resonant steps at specific voltages
Identification of a threshold number of junctions for coherence
Demonstration of polarization-dependent coupling effects
Abstract
We review our previous work on the dynamics of one- and two-dimensional arrays of underdamped Josephson junctions placed in a single-mode resonant cavity. Starting from a well-defined model Hamiltonian, which includes the effects of driving current and dissipative coupling to a heat bath, we write down the Heisenberg equations of motion for the variables of the Josephson junction and the cavity mode. In the limit of many photons, these equations reduce to coupled ordinary differential equations, which can be solved numerically. We present a review of some characteristic numerical results, which show many features similar to experiment. These include self-induced resonant steps (SIRS's) at voltages , where is the cavity frequency, and is generally an integer; a threshold number of active rows of junctions above which the array is coherent; and a…
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Taxonomy
TopicsQuantum and electron transport phenomena · Mechanical and Optical Resonators · Semiconductor Quantum Structures and Devices
