Transformable Superisostatic Crystals Self-Assembled from Segment Colloidal Rods.
basic_science · Level V
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- Record sourced from PubMed, PMID 38456633.
- Also identified by DOI 10.1021/acsnano.3c11538.
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Abstract
Transformable mechanical structures can switch between distinct mechanical states. Whether this kind of structure can be self-assembled from simple building blocks at microscale is a question to be answered. In this work, we propose a self-assembly strategy for these structures based on a nematic monolayer of segmented colloidal rods with lateral cutting. By using Monte Carlo simulation, we find that rods with different cutting degrees can self-assemble into different crystals characterized by bond coordination <i>z</i> that varies from 3 to 6. Among these, we identify a transformable superisostatic structure with <i>pgg</i> symmetry and redundant bonds (<i>z</i> = 5). We show that this structure can support either soft bulk modes or soft edge modes depending on its Poisson's ratio, which can be tuned from positive to negative through a uniform soft deformation. We also prove that the bulk soft modes are associated with states of self-stress along the direction of zero strain during uniform soft deformation. The self-assembled transformable structures may act as mechanical metamaterials with potential applications in micromechanical engineering.