Dynamical phase transition in the growth of programmable polymorphic materials

Fuente: arXiv
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Hauptverfasser: Chen, Fan, Jacobs, William M.
Format: Preprint
Veröffentlicht: 2025
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author Chen, Fan
Jacobs, William M.
author_facet Chen, Fan
Jacobs, William M.
contents The hallmark feature of polymorphic systems is their ability to assemble into many possible structures at the same thermodynamic state. Designer polymorphic materials can in principle be engineered via programmable self-assembly, but the robustness of the assembly process depends on dynamical factors that are poorly understood. Here we predict a new failure mode for the growth of multicomponent polymorphic materials, in which dynamical coexistence occurs between ordered and disordered assembly trajectories. We show that this transition is preceded by the formation of a steady-state disordered wetting layer, suggesting a nonequilibrium analogy to pre-melting phenomena at equilibrium. This dynamical phase transition is likely to occur in a variety of systems and may fundamentally limit the complexity of polymorphic materials that can be designed through programmable self-assembly.
format Preprint
id arxiv_https___arxiv_org_abs_2503_22011
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Dynamical phase transition in the growth of programmable polymorphic materials
Chen, Fan
Jacobs, William M.
Soft Condensed Matter
The hallmark feature of polymorphic systems is their ability to assemble into many possible structures at the same thermodynamic state. Designer polymorphic materials can in principle be engineered via programmable self-assembly, but the robustness of the assembly process depends on dynamical factors that are poorly understood. Here we predict a new failure mode for the growth of multicomponent polymorphic materials, in which dynamical coexistence occurs between ordered and disordered assembly trajectories. We show that this transition is preceded by the formation of a steady-state disordered wetting layer, suggesting a nonequilibrium analogy to pre-melting phenomena at equilibrium. This dynamical phase transition is likely to occur in a variety of systems and may fundamentally limit the complexity of polymorphic materials that can be designed through programmable self-assembly.
title Dynamical phase transition in the growth of programmable polymorphic materials
topic Soft Condensed Matter
url https://arxiv.org/abs/2503.22011