Partially bonded crystals: a pathway to porosity and polymorphism

Fuente: arXiv
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Main Authors: Karner, Carina, Bianchi, Emanuela
Format: Preprint
Published: 2024
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author Karner, Carina
Bianchi, Emanuela
author_facet Karner, Carina
Bianchi, Emanuela
contents In recent years, experimental and theoretical investigations have shown that anisotropic colloids can self-organise into ordered porous monolayers, where the interplay of localised bonding sites, so called patches, with the particle's shape is responsible for driving the systems away from close-packing and towards porosity. Until now it has been assumed that patchy particles have to be fully bonded with their neighbouring particles for crystals to form, and that, if full bonding cannot be achieved due to the choice of patch placement, disordered assemblies will form instead. In contrast, we show that by deliberately displacing the patches such that full bonding is disfavored, a different route to porous crystalline monolayers emerges, where geometric frustration and partial bonding are pivotal in the structure formation process. The resulting dangling bonds lead to the emergence of effectively chiral units which then act as building blocks for energetically equivalent crystal polymorphs.
format Preprint
id arxiv_https___arxiv_org_abs_2405_01300
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Partially bonded crystals: a pathway to porosity and polymorphism
Karner, Carina
Bianchi, Emanuela
Soft Condensed Matter
Disordered Systems and Neural Networks
In recent years, experimental and theoretical investigations have shown that anisotropic colloids can self-organise into ordered porous monolayers, where the interplay of localised bonding sites, so called patches, with the particle's shape is responsible for driving the systems away from close-packing and towards porosity. Until now it has been assumed that patchy particles have to be fully bonded with their neighbouring particles for crystals to form, and that, if full bonding cannot be achieved due to the choice of patch placement, disordered assemblies will form instead. In contrast, we show that by deliberately displacing the patches such that full bonding is disfavored, a different route to porous crystalline monolayers emerges, where geometric frustration and partial bonding are pivotal in the structure formation process. The resulting dangling bonds lead to the emergence of effectively chiral units which then act as building blocks for energetically equivalent crystal polymorphs.
title Partially bonded crystals: a pathway to porosity and polymorphism
topic Soft Condensed Matter
Disordered Systems and Neural Networks
url https://arxiv.org/abs/2405.01300