Efficient Large-Scale Many-Body Quantum Dynamics via Local-Information Time Evolution
Claudia Artiaco, Christoph Fleckenstein, David Aceituno Ch\'avez,, Thomas Klein Kvorning, Jens H. Bardarson

TL;DR
This paper introduces LITE, a novel method that efficiently simulates large-scale many-body quantum dynamics by discarding large-scale information while preserving local observables, enabling analysis of complex quantum systems over extended times.
Contribution
The paper presents the local information time evolution (LITE) algorithm, which systematically discards large-scale quantum information without losing local observable accuracy, facilitating large-scale and long-time quantum simulations.
Findings
Accurately determines diffusion coefficients in quantum transport models
Demonstrates effectiveness in both closed and open quantum systems
Provides insights into entanglement behavior across scales
Abstract
During time evolution of many-body systems entanglement grows rapidly, limiting exact simulations to small-scale systems or small timescales. Quantum information tends however to flow towards larger scales without returning to local scales, such that its detailed large-scale structure does not directly affect local observables. This allows for the removal of large-scale quantum information in a way that preserves all local observables and gives access to large-scale and large-time quantum dynamics. To this end, we use the recently introduced information lattice to organize quantum information into different scales, allowing us to define local information and information currents which we employ to systematically discard long-range quantum correlations in a controlled way. Our approach relies on decomposing the system into subsystems up to a maximum scale and time evolving the subsystem…
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Taxonomy
TopicsQuantum many-body systems · Theoretical and Computational Physics · Advanced Thermodynamics and Statistical Mechanics
