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Quantum Simulation

Phase-Space Methods for Simulating the Dissipative Many-Body Dynamics of Collective Spin Systems

arXiv
Authors: Julian Huber, Peter Kirton, Peter Rabl

Year

2020

Paper ID

19145

Status

Preprint

Abstract Read

~2 min

Abstract Words

116

Citations

N/A

Abstract

We describe an efficient numerical method for simulating the dynamics and steady states of collective spin systems in the presence of dephasing and decay. The method is based on the Schwinger boson representation of spin operators and uses an extension of the truncated Wigner approximation to map the exact open system dynamics onto stochastic differential equations for the corresponding phase space distribution. This approach is most effective in the limit of very large spin quantum numbers, where exact numerical simulations and other approximation methods are no longer applicable. We benchmark this numerical technique for known superradiant decay and spin-squeezing processes and illustrate its application for the simulation of non-equilibrium phase transitions in dissipative spin lattice models.

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  • This paper contributes to the Quantum Simulation research area in the Quantum Articles archive.
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  • We describe an efficient numerical method for simulating the dynamics and steady states of collective spin systems in the presence of dephasing and decay.

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