Temperature-driven self-assembly in a hexagonal mesophase-forming model: a dynamic and structural study.
basic_science · Level V
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- Also identified by DOI 10.1039/d5sm00034c.
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Abstract
We investigate the self-assembly and phase transitions of a binary-particle system that forms a hexagonal mesophase, modeled <i>via</i> isotropic Stillinger-Weber interactions and studied with molecular dynamics simulations. Two characteristic temperatures emerge: the order-disorder transition <i>T</i><sub>OD</sub>, marking the onset of hexagonal order, and a higher temperature <i>T</i><sub><i>x</i></sub> where wormlike clustering of the minority component first appears in the isotropic phase. Using three complementary methods-(i) angular characterization, (ii) dynamic correlation analysis, and (iii) neighbor permanence time-we show how wormlike aggregates evolve below <i>T</i><sub><i>x</i></sub> and eventually align into the ordered mesophase at <i>T</i><sub>OD</sub>. These results clarify the interplay among clustering, dynamic organization, and structural signals in driving mesophase formation, offering insights into the fundamental mechanisms governing self-assembly in complex materials.