Self-assembly of liquid crystals in nanoporous solids for adaptive photonic metamaterials.


Journal

Nanoscale
ISSN: 2040-3372
Titre abrégé: Nanoscale
Pays: England
ID NLM: 101525249

Informations de publication

Date de publication:
28 Dec 2019
Historique:
pubmed: 4 12 2019
medline: 4 12 2019
entrez: 3 12 2019
Statut: ppublish

Résumé

Nanoporous media exhibit structures significantly smaller than the wavelengths of visible light and can thus act as photonic metamaterials. Their optical functionality is not determined by the properties of the base materials, but rather by tailored, multiscale structures, in terms of precise pore shape, geometry, and orientation. Embedding liquid crystals in pore space provides additional opportunities to control light-matter interactions at the single-pore, meta-atomic scale. Here, we present temperature-dependent 3D reciprocal space mapping using synchrotron-based X-ray diffraction in combination with high-resolution birefringence experiments on disk-like mesogens (HAT6) imbibed in self-ordered arrays of parallel cylindrical pores 17 to 160 nm across in monolithic anodic aluminium oxide (AAO). In agreement with Monte Carlo computer simulations we observe a remarkably rich self-assembly behaviour, unknown from the bulk state. It encompasses transitions between the isotropic liquid state and discotic stacking in linear columns as well as circular concentric ring formation perpendicular and parallel to the pore axis. These textural transitions underpin an optical birefringence functionality, tuneable in magnitude and in sign from positive to negative via pore size, pore surface-grafting and temperature. Our study demonstrates that the advent of large-scale, self-organised nanoporosity in monolithic solids along with confinement-controllable phase behaviour of liquid-crystalline matter at the single-pore scale provides a reliable and accessible tool to design materials with adjustable optical anisotropy, and thus offers versatile pathways to fine-tune polarisation-dependent light propagation speeds in materials. Such a tailorability is at the core of the emerging field of transformative optics, allowing, e.g., adjustable light absorbers and extremely thin metalenses.

Identifiants

pubmed: 31788679
doi: 10.1039/c9nr07143a
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

23304-23317

Auteurs

Kathrin Sentker (K)

Institute of Materials Physics and Technology, Hamburg University of Technology, 21073 Hamburg, Germany. patrick.huber@tuhh.de.

Arda Yildirim (A)

Bundesanstalt für Materialforschung und -prüfung (BAM), Unter den Eichen 87, D-12205 Berlin, Germany.

Milena Lippmann (M)

Deutsches Elektronen-Synchrotron DESY, Notkestrasse 85, D-22607 Hamburg, Germany.

Arne W Zantop (AW)

Max-Planck-Institute for Dynamics and Self-Organization, Am Faßberg 17, D-37077 Göttingen, Germany.

Florian Bertram (F)

Deutsches Elektronen-Synchrotron DESY, Notkestrasse 85, D-22607 Hamburg, Germany.

Tommy Hofmann (T)

Helmholtz-Zentrum Berlin für Materialien und Energie, 14109 Berlin, Germany.

Oliver H Seeck (OH)

Deutsches Elektronen-Synchrotron DESY, Notkestrasse 85, D-22607 Hamburg, Germany.

Andriy V Kityk (AV)

Faculty of Electrical Engineering, Czestochowa University of Technology, 42-200 Czestochowa, Poland. andriy.kityk@univie.ac.at.

Marco G Mazza (MG)

Max-Planck-Institute for Dynamics and Self-Organization, Am Faßberg 17, D-37077 Göttingen, Germany and Interdisciplinary Centre for Mathematical Modelling and Department of Mathematical Sciences, Loughborough University, Loughborough, Leicestershire LE11 3TU, UK.

Andreas Schönhals (A)

Bundesanstalt für Materialforschung und -prüfung (BAM), Unter den Eichen 87, D-12205 Berlin, Germany.

Patrick Huber (P)

Institute of Materials Physics and Technology, Hamburg University of Technology, 21073 Hamburg, Germany. patrick.huber@tuhh.de.

Classifications MeSH