Path integral approach for predicting the diffusive statistics of geometric phases in chaotic Hamiltonian systems

Journal Article (2025)
Author(s)

A.C. Oliveira Silva (TU Delft - QN/Greplová Lab, Kavli institute of nanoscience Delft, Weizmann Institute of Science)

Efi Efrati (Weizmann Institute of Science)

Research Group
QN/Greplová Lab
DOI related publication
https://doi.org/10.1063/5.0271479
More Info
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Publication Year
2025
Language
English
Research Group
QN/Greplová Lab
Bibliographical Note
Green Open Access added to TU Delft Institutional Repository as part of the Taverne amendment. More information about this copyright law amendment can be found at https://www.openaccess.nl. Otherwise as indicated in the copyright section: the publisher is the copyright holder of this work and the author uses the Dutch legislation to make this work public.@en
Issue number
6
Volume number
35
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Abstract

From the integer quantum Hall effect to swimming at a low Reynolds number, geometric phases arise in the description of many different physical systems. In many of these systems, the temporal evolution prescribed by the geometric phase can be directly measured by an external observer. By definition, geometric phases rely on the history of the system’s internal dynamics, and so their measurement is directly related to the temporal correlations in the system. They, thus, provide a sensitive tool for studying chaotic Hamiltonian systems. In this work, we present a toy model consisting of an autonomous, low-dimensional, chaotic Hamiltonian system designed to have a simple planar internal state space and a single geometric phase. The diffusive phase dynamics in the highly chaotic regime is, thus, governed by the loop statistics of planar random walks. We show that the naïve loop statistics result in ballistic behavior of the phase and recover the diffusive behavior by considering a bounded shape space or a quadratic confining potential.

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