All-to-All interactions via multifractal wavefunction geometry

Fuente: arXiv
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Main Authors: Joung, YouYoung, Park, Jemin, Lee, SungBin
Format: Preprint
Published: 2025
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author Joung, YouYoung
Park, Jemin
Lee, SungBin
author_facet Joung, YouYoung
Park, Jemin
Lee, SungBin
contents We uncover a generic mechanism through which the intrinsic geometry of multifractal quantum wavefunctions generates effective all-to-all interactions in many-body systems. By analyzing the multifractal spectrum, we demonstrate that the simultaneous participation of widely separated length scales creates a global connectivity that bypasses local interaction constraints. This nonlocality leads to fast information scrambling, evidenced by sharp changes in the quenched dynamics of the quantum Fisher information and bipartite mutual information with the onset of negative tripartite mutual information. Such rapid scrambling is a defining feature of strongly chaotic quantum dynamics, and our results identify the systems with multifractal states as a promising solid-state platform for realizing this regime. More broadly, they reveal a new paradigm in which complex, multiscale wavefunction structure intrinsically generates long-range connectivity, providing a natural route to achieving nonlocal behavior in strongly correlated quantum materials.
format Preprint
id arxiv_https___arxiv_org_abs_2512_19798
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle All-to-All interactions via multifractal wavefunction geometry
Joung, YouYoung
Park, Jemin
Lee, SungBin
Strongly Correlated Electrons
We uncover a generic mechanism through which the intrinsic geometry of multifractal quantum wavefunctions generates effective all-to-all interactions in many-body systems. By analyzing the multifractal spectrum, we demonstrate that the simultaneous participation of widely separated length scales creates a global connectivity that bypasses local interaction constraints. This nonlocality leads to fast information scrambling, evidenced by sharp changes in the quenched dynamics of the quantum Fisher information and bipartite mutual information with the onset of negative tripartite mutual information. Such rapid scrambling is a defining feature of strongly chaotic quantum dynamics, and our results identify the systems with multifractal states as a promising solid-state platform for realizing this regime. More broadly, they reveal a new paradigm in which complex, multiscale wavefunction structure intrinsically generates long-range connectivity, providing a natural route to achieving nonlocal behavior in strongly correlated quantum materials.
title All-to-All interactions via multifractal wavefunction geometry
topic Strongly Correlated Electrons
url https://arxiv.org/abs/2512.19798