Quantum Simulation of Generic Many-Body Open System Dynamics Using Classical Noise

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Abstract

We introduce a scheme for the quantum simulation of many-body decoherence based on the unitary evolution of a stochastic Hamiltonian. Modulating the strength of the interactions with stochastic processes, we show that the noise-averaged density matrix simulates an effectively open dynamics governed by k-body Lindblad operators. Markovian dynamics can be accessed with white-noise fluctuations; non-Markovian dynamics requires colored noise. The time scale governing the fidelity decay under many-body decoherence is shown to scale as N-2k with the system size N. Our proposal can be readily implemented in a variety of quantum platforms including optical lattices, superconducting circuits, and trapped ions.

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Chenu, A., Beau, M., Cao, J., & Del Campo, A. (2017). Quantum Simulation of Generic Many-Body Open System Dynamics Using Classical Noise. Physical Review Letters, 118(14). https://doi.org/10.1103/PhysRevLett.118.140403

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