Optical Imaging of Large Gyroid Grains in Block Copolymer Templates by Confined Crystallization

[Image: see text] Block copolymer (BCP) self-assembly is a promising route to manufacture functional nanomaterials for applications from nanolithography to optical metamaterials. Self-assembled cubic morphologies cannot, however, be conveniently optically characterized in the lab due to their struct...

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Autores principales: Dehmel, Raphael, Dolan, James A., Gu, Yibei, Wiesner, Ulrich, Wilkinson, Timothy D., Baumberg, Jeremy J., Steiner, Ullrich, Wilts, Bodo D., Gunkel, Ilja
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2017
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5594442/
https://www.ncbi.nlm.nih.gov/pubmed/28919648
http://dx.doi.org/10.1021/acs.macromol.7b01528
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author Dehmel, Raphael
Dolan, James A.
Gu, Yibei
Wiesner, Ulrich
Wilkinson, Timothy D.
Baumberg, Jeremy J.
Steiner, Ullrich
Wilts, Bodo D.
Gunkel, Ilja
author_facet Dehmel, Raphael
Dolan, James A.
Gu, Yibei
Wiesner, Ulrich
Wilkinson, Timothy D.
Baumberg, Jeremy J.
Steiner, Ullrich
Wilts, Bodo D.
Gunkel, Ilja
author_sort Dehmel, Raphael
collection PubMed
description [Image: see text] Block copolymer (BCP) self-assembly is a promising route to manufacture functional nanomaterials for applications from nanolithography to optical metamaterials. Self-assembled cubic morphologies cannot, however, be conveniently optically characterized in the lab due to their structural isotropy. Here, the aligned crystallization behavior of a semicrystalline-amorphous polyisoprene-b-polystyrene-b-poly(ethylene oxide) (ISO) triblock terpolymer was utilized to visualize the grain structure of the cubic microphase-separated morphology. Upon quenching from a solvent swollen state, ISO first self-assembles into an alternating gyroid morphology, in the confinement of which the PEO crystallizes preferentially along the least tortuous pathways of the single gyroid morphology with grain sizes of hundreds of micrometers. Strikingly, the resulting anisotropic alignment of PEO crystallites gives rise to a unique optical birefringence of the alternating gyroid domains, which allows imaging of the self-assembled grain structure by optical microscopy alone. This study provides insight into polymer crystallization within a tortuous three-dimensional network and establishes a useful method for the optical visualization of cubic BCP morphologies that serve as functional nanomaterial templates.
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spelling pubmed-55944422017-09-14 Optical Imaging of Large Gyroid Grains in Block Copolymer Templates by Confined Crystallization Dehmel, Raphael Dolan, James A. Gu, Yibei Wiesner, Ulrich Wilkinson, Timothy D. Baumberg, Jeremy J. Steiner, Ullrich Wilts, Bodo D. Gunkel, Ilja Macromolecules [Image: see text] Block copolymer (BCP) self-assembly is a promising route to manufacture functional nanomaterials for applications from nanolithography to optical metamaterials. Self-assembled cubic morphologies cannot, however, be conveniently optically characterized in the lab due to their structural isotropy. Here, the aligned crystallization behavior of a semicrystalline-amorphous polyisoprene-b-polystyrene-b-poly(ethylene oxide) (ISO) triblock terpolymer was utilized to visualize the grain structure of the cubic microphase-separated morphology. Upon quenching from a solvent swollen state, ISO first self-assembles into an alternating gyroid morphology, in the confinement of which the PEO crystallizes preferentially along the least tortuous pathways of the single gyroid morphology with grain sizes of hundreds of micrometers. Strikingly, the resulting anisotropic alignment of PEO crystallites gives rise to a unique optical birefringence of the alternating gyroid domains, which allows imaging of the self-assembled grain structure by optical microscopy alone. This study provides insight into polymer crystallization within a tortuous three-dimensional network and establishes a useful method for the optical visualization of cubic BCP morphologies that serve as functional nanomaterial templates. American Chemical Society 2017-08-07 2017-08-22 /pmc/articles/PMC5594442/ /pubmed/28919648 http://dx.doi.org/10.1021/acs.macromol.7b01528 Text en Copyright © 2017 American Chemical Society This is an open access article published under a Creative Commons Attribution (CC-BY) License (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html) , which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited.
spellingShingle Dehmel, Raphael
Dolan, James A.
Gu, Yibei
Wiesner, Ulrich
Wilkinson, Timothy D.
Baumberg, Jeremy J.
Steiner, Ullrich
Wilts, Bodo D.
Gunkel, Ilja
Optical Imaging of Large Gyroid Grains in Block Copolymer Templates by Confined Crystallization
title Optical Imaging of Large Gyroid Grains in Block Copolymer Templates by Confined Crystallization
title_full Optical Imaging of Large Gyroid Grains in Block Copolymer Templates by Confined Crystallization
title_fullStr Optical Imaging of Large Gyroid Grains in Block Copolymer Templates by Confined Crystallization
title_full_unstemmed Optical Imaging of Large Gyroid Grains in Block Copolymer Templates by Confined Crystallization
title_short Optical Imaging of Large Gyroid Grains in Block Copolymer Templates by Confined Crystallization
title_sort optical imaging of large gyroid grains in block copolymer templates by confined crystallization
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5594442/
https://www.ncbi.nlm.nih.gov/pubmed/28919648
http://dx.doi.org/10.1021/acs.macromol.7b01528
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