Controlled topological dilution drives cooperative glassy dynamics in artificial spin ice

Fuente: arXiv
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Main Authors: Crater, Davis, Mueller, Ryan, Thapa, Sanjib, Hofhuis, Kevin, Kleibert, Armin, Caravelli, Francesco, Farhan, Alan
Format: Preprint
Published: 2026
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_version_ 1866911571274366976
author Crater, Davis
Mueller, Ryan
Thapa, Sanjib
Hofhuis, Kevin
Kleibert, Armin
Caravelli, Francesco
Farhan, Alan
author_facet Crater, Davis
Mueller, Ryan
Thapa, Sanjib
Hofhuis, Kevin
Kleibert, Armin
Caravelli, Francesco
Farhan, Alan
contents It has long been known that disorder, perturbing the energy landscape of magnetic systems, can introduce glassy dynamics. However, the controlled role of increasing disorder in driving glass formation remains difficult to isolate in naturally occurring materials. Artificial spin ice offers a unique model platform in which geometry, interactions, and disorder can be engineered at the nanoscale. Here, we investigate the impact of controlled disorder introduced through random decimation in artificial square spin ice. By systematically removing nanomagnets from random sites, we modify the vertex topology and progressively increase frustration in the spin network. Synchrotron-based photoemission electron microscopy reveals that decimation enhances the population of higher energy vertices and increases the configurational entropy of the system. Time-resolved temperature-dependent imaging further shows the emergence of slow cooperative dynamics at higher decimation, characterized by aging, a finite Edwards--Anderson order parameter, and enhanced dynamical heterogeneity quantified by the four-point susceptibility. The relaxation dynamics transition from thermally activated behavior at low decimation to Vogel--Fulcher--type freezing at higher decimation. These results demonstrate that random decimation drives artificial spin ice from long-range order to a glass-like magnetic state, establishing artificial spin systems as a tunable platform for studying glassy dynamics in frustrated matter.
format Preprint
id arxiv_https___arxiv_org_abs_2604_05132
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Controlled topological dilution drives cooperative glassy dynamics in artificial spin ice
Crater, Davis
Mueller, Ryan
Thapa, Sanjib
Hofhuis, Kevin
Kleibert, Armin
Caravelli, Francesco
Farhan, Alan
Mesoscale and Nanoscale Physics
Statistical Mechanics
It has long been known that disorder, perturbing the energy landscape of magnetic systems, can introduce glassy dynamics. However, the controlled role of increasing disorder in driving glass formation remains difficult to isolate in naturally occurring materials. Artificial spin ice offers a unique model platform in which geometry, interactions, and disorder can be engineered at the nanoscale. Here, we investigate the impact of controlled disorder introduced through random decimation in artificial square spin ice. By systematically removing nanomagnets from random sites, we modify the vertex topology and progressively increase frustration in the spin network. Synchrotron-based photoemission electron microscopy reveals that decimation enhances the population of higher energy vertices and increases the configurational entropy of the system. Time-resolved temperature-dependent imaging further shows the emergence of slow cooperative dynamics at higher decimation, characterized by aging, a finite Edwards--Anderson order parameter, and enhanced dynamical heterogeneity quantified by the four-point susceptibility. The relaxation dynamics transition from thermally activated behavior at low decimation to Vogel--Fulcher--type freezing at higher decimation. These results demonstrate that random decimation drives artificial spin ice from long-range order to a glass-like magnetic state, establishing artificial spin systems as a tunable platform for studying glassy dynamics in frustrated matter.
title Controlled topological dilution drives cooperative glassy dynamics in artificial spin ice
topic Mesoscale and Nanoscale Physics
Statistical Mechanics
url https://arxiv.org/abs/2604.05132