Pattern formation, structure and functionalities of wrinkled liquid crystal surfaces: A soft matter biomimicry platform

This review presents an integrated theoretical and computational characterization and analysis of surface pattern formation in chiral and achiral liquid crystal self-assembly and the mechanical/optical/tribological/tissue engineering surface functionalities that emerge from various wrinkling process...

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Main Authors: Ziheng Wang, Phillip Servio, Alejandro D. Rey
Format: Article
Language:English
Published: Frontiers Media S.A. 2023-02-01
Series:Frontiers in Soft Matter
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/frsfm.2023.1123324/full
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author Ziheng Wang
Ziheng Wang
Phillip Servio
Alejandro D. Rey
author_facet Ziheng Wang
Ziheng Wang
Phillip Servio
Alejandro D. Rey
author_sort Ziheng Wang
collection DOAJ
description This review presents an integrated theoretical and computational characterization and analysis of surface pattern formation in chiral and achiral liquid crystal self-assembly and the mechanical/optical/tribological/tissue engineering surface functionalities that emerge from various wrinkling processes. Strategies to target surface patterns include linear, non-linear, multidirectional and multiscale wrinkling phenomena. The focus of the review is to show the unique surface structure-functionalities that emerge from anisotropic liquid crystal soft matter, eliminating or reducing the need of aggressive solvents, extreme pressure/temperature conditions, erosion and other surface morphing approaches. The surface pattern formation theoretical-modelling- computational results are then connected and validated with actual biological surfaces that are considered solid liquid crystal analogues, such as exocuticles of insects, fish scales, and flowers. A unique feature of the in silico surface pattern formation platform used throughout this review is the generalized liquid crystal shape equation that includes surface anchoring elasticity, membrane elasticity, and stress loads from liquid crystals orientation gradients. Clear characterization of surface shapes, curvatures, roughness, that are behind surface functionalities are introduced and applied to strengthen validation of predictions with actual nature’s surfaces. Wrinkling scaling laws, and the dependence of material properties on morphing mechanisms are elucidated. The predictions capture very well the two-scale wrinkling patterns in tulips, wrinkling gradients that display water sensor capabilities, egg carton shapes in rose petals and their potential for cell alignment, and the ability to create surface roughness with targeted kurtosis and skewness to control and optimize friction and tribological functionalities. The results are summarized in terms of surface geometry (open or closed) mechanisms and phenomena (anchoring, membrane elasticity), material properties (anchoring coefficients, membrane bending modulus, Frank elasticity), wrinkling scales and scaling laws (amplitude, wave-lengths, skewness, kurtosis) and functionalities (optical iridescence, friction, wettability, structural color, curvature-driven cell alignment and differentiation). Taken together, the range of surface geometries and surface functionalities captured by the liquid crystal biomimetic in silico platform provides a foundation for future experimental green manufacturing pathways based on anisotropic soft matter.
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spelling doaj.art-abd22e374f2f468689cc28daebd5e4012024-08-03T01:23:36ZengFrontiers Media S.A.Frontiers in Soft Matter2813-04992023-02-01310.3389/frsfm.2023.11233241123324Pattern formation, structure and functionalities of wrinkled liquid crystal surfaces: A soft matter biomimicry platformZiheng Wang0Ziheng Wang1Phillip Servio2Alejandro D. Rey3Materials Modeling Research Group (MMRG), Department of Chemical Engineering, McGill University, Montréal, QC, CanadaHydrateTech, Department of Chemical Engineering, McGill University, Montréal, QC, CanadaHydrateTech, Department of Chemical Engineering, McGill University, Montréal, QC, CanadaMaterials Modeling Research Group (MMRG), Department of Chemical Engineering, McGill University, Montréal, QC, CanadaThis review presents an integrated theoretical and computational characterization and analysis of surface pattern formation in chiral and achiral liquid crystal self-assembly and the mechanical/optical/tribological/tissue engineering surface functionalities that emerge from various wrinkling processes. Strategies to target surface patterns include linear, non-linear, multidirectional and multiscale wrinkling phenomena. The focus of the review is to show the unique surface structure-functionalities that emerge from anisotropic liquid crystal soft matter, eliminating or reducing the need of aggressive solvents, extreme pressure/temperature conditions, erosion and other surface morphing approaches. The surface pattern formation theoretical-modelling- computational results are then connected and validated with actual biological surfaces that are considered solid liquid crystal analogues, such as exocuticles of insects, fish scales, and flowers. A unique feature of the in silico surface pattern formation platform used throughout this review is the generalized liquid crystal shape equation that includes surface anchoring elasticity, membrane elasticity, and stress loads from liquid crystals orientation gradients. Clear characterization of surface shapes, curvatures, roughness, that are behind surface functionalities are introduced and applied to strengthen validation of predictions with actual nature’s surfaces. Wrinkling scaling laws, and the dependence of material properties on morphing mechanisms are elucidated. The predictions capture very well the two-scale wrinkling patterns in tulips, wrinkling gradients that display water sensor capabilities, egg carton shapes in rose petals and their potential for cell alignment, and the ability to create surface roughness with targeted kurtosis and skewness to control and optimize friction and tribological functionalities. The results are summarized in terms of surface geometry (open or closed) mechanisms and phenomena (anchoring, membrane elasticity), material properties (anchoring coefficients, membrane bending modulus, Frank elasticity), wrinkling scales and scaling laws (amplitude, wave-lengths, skewness, kurtosis) and functionalities (optical iridescence, friction, wettability, structural color, curvature-driven cell alignment and differentiation). Taken together, the range of surface geometries and surface functionalities captured by the liquid crystal biomimetic in silico platform provides a foundation for future experimental green manufacturing pathways based on anisotropic soft matter.https://www.frontiersin.org/articles/10.3389/frsfm.2023.1123324/fullliquid crystal analoguesurface patternmultiscale wrinklingself-assemblychiral phase
spellingShingle Ziheng Wang
Ziheng Wang
Phillip Servio
Alejandro D. Rey
Pattern formation, structure and functionalities of wrinkled liquid crystal surfaces: A soft matter biomimicry platform
Frontiers in Soft Matter
liquid crystal analogue
surface pattern
multiscale wrinkling
self-assembly
chiral phase
title Pattern formation, structure and functionalities of wrinkled liquid crystal surfaces: A soft matter biomimicry platform
title_full Pattern formation, structure and functionalities of wrinkled liquid crystal surfaces: A soft matter biomimicry platform
title_fullStr Pattern formation, structure and functionalities of wrinkled liquid crystal surfaces: A soft matter biomimicry platform
title_full_unstemmed Pattern formation, structure and functionalities of wrinkled liquid crystal surfaces: A soft matter biomimicry platform
title_short Pattern formation, structure and functionalities of wrinkled liquid crystal surfaces: A soft matter biomimicry platform
title_sort pattern formation structure and functionalities of wrinkled liquid crystal surfaces a soft matter biomimicry platform
topic liquid crystal analogue
surface pattern
multiscale wrinkling
self-assembly
chiral phase
url https://www.frontiersin.org/articles/10.3389/frsfm.2023.1123324/full
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AT phillipservio patternformationstructureandfunctionalitiesofwrinkledliquidcrystalsurfacesasoftmatterbiomimicryplatform
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