Topological defects in buckled colloidal monolayers

Fuente: arXiv
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Bibliographic Details
Main Authors: Galper, Aaron L., Barck, Henrik N., Floyd, Conor M., Snyder, Elliot A., Schofield, Charlie J., Jayaweera, Sorin A. P., McGuire, Ian G., Gerbode, Sharon J.
Format: Preprint
Published: 2026
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author Galper, Aaron L.
Barck, Henrik N.
Floyd, Conor M.
Snyder, Elliot A.
Schofield, Charlie J.
Jayaweera, Sorin A. P.
McGuire, Ian G.
Gerbode, Sharon J.
author_facet Galper, Aaron L.
Barck, Henrik N.
Floyd, Conor M.
Snyder, Elliot A.
Schofield, Charlie J.
Jayaweera, Sorin A. P.
McGuire, Ian G.
Gerbode, Sharon J.
contents When colloidal particles are vertically confined to a gap of between 1.3-1.6 particle diameters, they pack into buckled crystals of particles in either "up" or "down" states. Neighboring particles tend to occupy opposite states, analogous to the behavior of antiferromagnetic spins. The particles sit on a nearly-triangular lattice, and the spins of trios of adjacent particles are geometrically frustrated. Two levels of translational order exist in this system: that of the underlying triangular lattice in the horizontal plane, and that of the emergent frustrated spin lattice in the vertical dimension. We study the topological defects of both levels of translational order, and we find that both types of defects play a role in crystal grain boundary structure and spin domain coarsening. We classify the spin defects and outline the basic rules for their motion, and we observe interactions between dislocations and spin defects. Finally, we map the phase space of spin coarsening in the buckled monolayer, characterizing which types of defects drive the dynamics. Understanding defect formation, motion, and interaction in the buckled monolayer is the first step in predicting the material properties and aging of this geometrically frustrated, self-assembled system.
format Preprint
id arxiv_https___arxiv_org_abs_2603_03813
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Topological defects in buckled colloidal monolayers
Galper, Aaron L.
Barck, Henrik N.
Floyd, Conor M.
Snyder, Elliot A.
Schofield, Charlie J.
Jayaweera, Sorin A. P.
McGuire, Ian G.
Gerbode, Sharon J.
Soft Condensed Matter
When colloidal particles are vertically confined to a gap of between 1.3-1.6 particle diameters, they pack into buckled crystals of particles in either "up" or "down" states. Neighboring particles tend to occupy opposite states, analogous to the behavior of antiferromagnetic spins. The particles sit on a nearly-triangular lattice, and the spins of trios of adjacent particles are geometrically frustrated. Two levels of translational order exist in this system: that of the underlying triangular lattice in the horizontal plane, and that of the emergent frustrated spin lattice in the vertical dimension. We study the topological defects of both levels of translational order, and we find that both types of defects play a role in crystal grain boundary structure and spin domain coarsening. We classify the spin defects and outline the basic rules for their motion, and we observe interactions between dislocations and spin defects. Finally, we map the phase space of spin coarsening in the buckled monolayer, characterizing which types of defects drive the dynamics. Understanding defect formation, motion, and interaction in the buckled monolayer is the first step in predicting the material properties and aging of this geometrically frustrated, self-assembled system.
title Topological defects in buckled colloidal monolayers
topic Soft Condensed Matter
url https://arxiv.org/abs/2603.03813