Three-dimensional colloidal crystals in liquid crystalline blue phases.

Applications for photonic crystals and metamaterials put stringent requirements on the characteristics of advanced optical materials, demanding tunability, high Q factors, applicability in visible range, and large-scale self-assembly. Exploiting the interplay between structural and optical propertie...

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Main Authors: Ravnik, M, Alexander, G, Yeomans, J, Žumer, S
Format: Journal article
Language:English
Published: 2011
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author Ravnik, M
Alexander, G
Yeomans, J
Žumer, S
author_facet Ravnik, M
Alexander, G
Yeomans, J
Žumer, S
author_sort Ravnik, M
collection OXFORD
description Applications for photonic crystals and metamaterials put stringent requirements on the characteristics of advanced optical materials, demanding tunability, high Q factors, applicability in visible range, and large-scale self-assembly. Exploiting the interplay between structural and optical properties, colloidal lattices embedded in liquid crystals (LCs) are promising candidates for such materials. Recently, stable two-dimensional colloidal configurations were demonstrated in nematic LCs. However, the question as to whether stable 3D colloidal structures can exist in an LC had remained unanswered. We show, by means of computer modeling, that colloidal particles can self-assemble into stable, 3D, periodic structures in blue phase LCs. The assembly is based on blue phases providing a 3D template of trapping sites for colloidal particles. The particle configuration is determined by the orientational order of the LC molecules: Specifically, face-centered cubic colloidal crystals form in type-I blue phases, whereas body-centered crystals form in type-II blue phases. For typical particle diameters (approximately 100 nm) the effective binding energy can reach up to a few 100 k(B)T, implying robustness against mechanical stress and temperature fluctuations. Moreover, the colloidal particles substantially increase the thermal stability range of the blue phases, for a factor of two and more. The LC-supported colloidal structure is one or two orders of magnitude stronger bound than, e.g., water-based colloidal crystals.
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spelling oxford-uuid:b8954e9f-d73e-448a-ad60-c61ba71d45d82022-03-27T04:56:50ZThree-dimensional colloidal crystals in liquid crystalline blue phases.Journal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:b8954e9f-d73e-448a-ad60-c61ba71d45d8EnglishSymplectic Elements at Oxford2011Ravnik, MAlexander, GYeomans, JŽumer, SApplications for photonic crystals and metamaterials put stringent requirements on the characteristics of advanced optical materials, demanding tunability, high Q factors, applicability in visible range, and large-scale self-assembly. Exploiting the interplay between structural and optical properties, colloidal lattices embedded in liquid crystals (LCs) are promising candidates for such materials. Recently, stable two-dimensional colloidal configurations were demonstrated in nematic LCs. However, the question as to whether stable 3D colloidal structures can exist in an LC had remained unanswered. We show, by means of computer modeling, that colloidal particles can self-assemble into stable, 3D, periodic structures in blue phase LCs. The assembly is based on blue phases providing a 3D template of trapping sites for colloidal particles. The particle configuration is determined by the orientational order of the LC molecules: Specifically, face-centered cubic colloidal crystals form in type-I blue phases, whereas body-centered crystals form in type-II blue phases. For typical particle diameters (approximately 100 nm) the effective binding energy can reach up to a few 100 k(B)T, implying robustness against mechanical stress and temperature fluctuations. Moreover, the colloidal particles substantially increase the thermal stability range of the blue phases, for a factor of two and more. The LC-supported colloidal structure is one or two orders of magnitude stronger bound than, e.g., water-based colloidal crystals.
spellingShingle Ravnik, M
Alexander, G
Yeomans, J
Žumer, S
Three-dimensional colloidal crystals in liquid crystalline blue phases.
title Three-dimensional colloidal crystals in liquid crystalline blue phases.
title_full Three-dimensional colloidal crystals in liquid crystalline blue phases.
title_fullStr Three-dimensional colloidal crystals in liquid crystalline blue phases.
title_full_unstemmed Three-dimensional colloidal crystals in liquid crystalline blue phases.
title_short Three-dimensional colloidal crystals in liquid crystalline blue phases.
title_sort three dimensional colloidal crystals in liquid crystalline blue phases
work_keys_str_mv AT ravnikm threedimensionalcolloidalcrystalsinliquidcrystallinebluephases
AT alexanderg threedimensionalcolloidalcrystalsinliquidcrystallinebluephases
AT yeomansj threedimensionalcolloidalcrystalsinliquidcrystallinebluephases
AT zumers threedimensionalcolloidalcrystalsinliquidcrystallinebluephases