Gaussian-state Ansatz for the non-equilibrium dynamics of quantum spin lattices
Rapha\"el Menu, Tommaso Roscilde

TL;DR
This paper introduces a Gaussian Ansatz approach for simulating the non-equilibrium dynamics of quantum spin lattices, effectively capturing key phenomena like relaxation and quasiparticle dispersion.
Contribution
It proposes a novel Gaussian state approximation for quantum spin dynamics, validated on the transverse-field Ising model, capturing nonlinear effects and critical behavior.
Findings
Accurately reproduces state evolution and relaxation.
Reveals quasiparticle dispersion and gap softening.
Captures essential nonlinear effects in spin dynamics.
Abstract
The study of non-equilibrium dynamics is one of the most important challenges of modern quantum many-body physics, in relationship with fundamental questions in quantum statistical mechanics, as well as with the fields of quantum simulation and computing. In this work we propose a Gaussian Ansatz for the study of the nonequilibrium dynamics of quantum spin systems. Within our approach, the quantum spins are mapped onto Holstein-Primakoff bosons, such that a coherent spin state -- chosen as the initial state of the dynamics -- represents the bosonic vacuum. The state of the system is then postulated to remain a bosonic Gaussian state at all times, an assumption which is exact when the bosonic Hamiltonian is quadratic; and which is justified in the case of a nonlinear Hamiltonian if the boson density remains moderate. We test the accuracy of such an Ansatz in the paradigmatic case of the…
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Taxonomy
TopicsQuantum many-body systems · Cold Atom Physics and Bose-Einstein Condensates · Quantum Information and Cryptography
