Analog–Digital Quantum Simulation of the Dicke Model with Superconducting Circuits


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Abstract

We propose a concept of mixed analog–digital quantum simulation of the Dicke model with ensembles of superconducting qubits coupled to the single-mode microwave resonators. Using both single-qubit and twoqubit quantum logic gates, it should be possible to engineer different initial conditions for the ensemble of qubits. Since qubits can interact through the photon field of a common quantum resonator, it is attractive to examine the time evolution of this system depending on various characteristics of the initial state, including entanglement and symmetry. We here study theoretically the dynamics of such systems taking into account energy dissipation, pure decoherence as well as disorder in qubits excitation frequencies, which are unavoidable for macroscopic artificial quantum systems. We reveal unusual effects of these imperfections on the dynamics.

About the authors

S. V. Remizov

All-Russia Research Institute of Automatics; Kotel’nikov Institute of Radio Engineering and Electronics

Email: lozovik@mail.ru
Russian Federation, Moscow, 127055; Moscow, 125009

A. A. Zhukov

All-Russia Research Institute of Automatics; National Research Nuclear University MEPhI (Moscow Engineering Physics Institute)

Email: lozovik@mail.ru
Russian Federation, Moscow, 127055; Moscow, 115409

W. V. Pogosov

All-Russia Research Institute of Automatics; Institute for Theoretical and Applied Electrodynamics

Email: lozovik@mail.ru
Russian Federation, Moscow, 127055; Moscow, 125412

Yu. E. Lozovik

All-Russia Research Institute of Automatics; Institute of Spectroscopy; National Research University Higher School of Economics

Author for correspondence.
Email: lozovik@mail.ru
Russian Federation, Moscow, 127055; Troitsk, Moscow, 108840; Moscow, 101000

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