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arXiv:1502.02980·v2·Strongly Correlated Electrons

Real-time dynamics of open quantum spin systems driven by dissipative processes

Florian Hebenstreit🇨🇭 · Debasish Banerjee🇩🇪 · Manes Hornung🇨🇭 · Fu-Jiun Jiang🇹🇼 · Franziska Schranz🇨🇭 · Uwe-Jens Wiese🇨🇭

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Abstract

We study the real-time evolution of large open quantum spin systems in two spatial dimensions, whose dynamics is entirely driven by a dissipative coupling to the environment. We consider different dissipative processes and investigate the real-time evolution from an ordered phase of the Heisenberg or XY-model towards a disordered phase at late times, disregarding unitary Hamiltonian dynamics. The corresponding Kossakowski-Lindblad equation is solved via an efficient cluster algorithm. We find that the symmetry of the dissipative process determines the time scales which govern the approach towards a new equilibrium phase at late times. Most notably, we find a slow equilibration if the dissipative process conserves any of the magnetization Fourier modes. In these cases, the dynamics can be interpreted as a diffusion process of the conserved quantity.

Comments: 28 pages, 11 figures. Revised version: Presentation reorganized and one figure added

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