Emergent charge crystallization and frustration in a particle anti-spin ice
En palabras de los autores
Artificial spin ices have transcended their origins in frustrated rare-earth pyrochlores to become a versatile platform for engineering exotic states of matter. Across diverse implementations, from nanomagnets and superconducting vortices to colloids, quantum annealers, liquid crystals, and metamaterials, they are frequently described by the ice rule, often leading to degeneracy and constrained disorder by enforcing minimization of the local topological charge. Here, we report the realization of an “anti-spin ice” in which not only the ice rule does not hold, but its opposite is true as the system seeks to maximize, rather than minimize, spin ice charges. Using fast-rotating in-plane magnetic fields to generate isotropic attraction between colloidal particles, we invert the conventional paradigm of repulsive interactions in colloidal spin ices. Combining experiments and simulations across bipartite square and honeycomb lattices as well as non-bipartite pentaheptite geometries, we establish rules for order and disorder in the anti-spin ice. With the pentaheptite lattice, we demonstrate that the anti-spin ice system can also exhibit frustration, but of a different kind. This topological charge frustration arises from the lattice connectivity, where networks of unequal, odd-sided polygons suppress charge crystallization at high interaction strengths. Artificial spin ices are a versatile platform for realizing geometrically frustrated states. Here, the authors demonstrate an anti-spin ice made of trapped colloids which experience tunable isotropic attractive interactions and which invert the conventional ice rule paradigm.
Apareció: domingo, 27 de septiembre. Nature Communications. Revista con revisión por pares.