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Stabilizing a Double Gyroid Network Phase with 2 nm Feature Size by Blending of Lamellar and Cylindrical Forming Block Oligomers

[Image: see text] Molecular dynamics simulations are used to study binary blends of an AB-type diblock and an AB(2)-type miktoarm triblock amphiphiles (also known as high-χ block oligomers) consisting of sugar-based (A) and hydrocarbon (B) blocks. In their pure form, the AB diblock and AB(2) tribloc...

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Autores principales: Shen, Zhengyuan, Luo, Ke, Park, So Jung, Li, Daoyuan, Mahanthappa, Mahesh K., Bates, Frank S., Dorfman, Kevin D., Lodge, Timothy P., Siepmann, J. Ilja
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9241014/
https://www.ncbi.nlm.nih.gov/pubmed/35783180
http://dx.doi.org/10.1021/jacsau.2c00101
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author Shen, Zhengyuan
Luo, Ke
Park, So Jung
Li, Daoyuan
Mahanthappa, Mahesh K.
Bates, Frank S.
Dorfman, Kevin D.
Lodge, Timothy P.
Siepmann, J. Ilja
author_facet Shen, Zhengyuan
Luo, Ke
Park, So Jung
Li, Daoyuan
Mahanthappa, Mahesh K.
Bates, Frank S.
Dorfman, Kevin D.
Lodge, Timothy P.
Siepmann, J. Ilja
author_sort Shen, Zhengyuan
collection PubMed
description [Image: see text] Molecular dynamics simulations are used to study binary blends of an AB-type diblock and an AB(2)-type miktoarm triblock amphiphiles (also known as high-χ block oligomers) consisting of sugar-based (A) and hydrocarbon (B) blocks. In their pure form, the AB diblock and AB(2) triblock amphiphiles self-assemble into ordered lamellar (LAM) and cylindrical (CYL) structures, respectively. At intermediate compositions, however, the AB(2)-rich blend (0.2 ≤ x(AB) ≤ 0.4) forms a double gyroid (DG) network, whereas perforated lamellae (PL) are observed in the AB-rich blend (0.5 ≤ x(AB) ≤ 0.8). All of the ordered mesophases present domain pitches under 3 nm, with 1 nm feature sizes for the polar domains. Structural analyses reveal that the nonuniform interfacial curvatures of DG and PL structures are supported by local composition variations of the LAM- and CYL-forming amphiphiles. Self-consistent mean field theory calculations for blends of related AB and AB(2) block polymers also show the DG network at intermediate compositions, when A is the minority block, but PL is not stable. This work provides molecular-level insights into how blending of shape-filling molecular architectures enables network phase formation with extremely small feature sizes over a wide composition range.
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spelling pubmed-92410142022-06-30 Stabilizing a Double Gyroid Network Phase with 2 nm Feature Size by Blending of Lamellar and Cylindrical Forming Block Oligomers Shen, Zhengyuan Luo, Ke Park, So Jung Li, Daoyuan Mahanthappa, Mahesh K. Bates, Frank S. Dorfman, Kevin D. Lodge, Timothy P. Siepmann, J. Ilja JACS Au [Image: see text] Molecular dynamics simulations are used to study binary blends of an AB-type diblock and an AB(2)-type miktoarm triblock amphiphiles (also known as high-χ block oligomers) consisting of sugar-based (A) and hydrocarbon (B) blocks. In their pure form, the AB diblock and AB(2) triblock amphiphiles self-assemble into ordered lamellar (LAM) and cylindrical (CYL) structures, respectively. At intermediate compositions, however, the AB(2)-rich blend (0.2 ≤ x(AB) ≤ 0.4) forms a double gyroid (DG) network, whereas perforated lamellae (PL) are observed in the AB-rich blend (0.5 ≤ x(AB) ≤ 0.8). All of the ordered mesophases present domain pitches under 3 nm, with 1 nm feature sizes for the polar domains. Structural analyses reveal that the nonuniform interfacial curvatures of DG and PL structures are supported by local composition variations of the LAM- and CYL-forming amphiphiles. Self-consistent mean field theory calculations for blends of related AB and AB(2) block polymers also show the DG network at intermediate compositions, when A is the minority block, but PL is not stable. This work provides molecular-level insights into how blending of shape-filling molecular architectures enables network phase formation with extremely small feature sizes over a wide composition range. American Chemical Society 2022-05-31 /pmc/articles/PMC9241014/ /pubmed/35783180 http://dx.doi.org/10.1021/jacsau.2c00101 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Shen, Zhengyuan
Luo, Ke
Park, So Jung
Li, Daoyuan
Mahanthappa, Mahesh K.
Bates, Frank S.
Dorfman, Kevin D.
Lodge, Timothy P.
Siepmann, J. Ilja
Stabilizing a Double Gyroid Network Phase with 2 nm Feature Size by Blending of Lamellar and Cylindrical Forming Block Oligomers
title Stabilizing a Double Gyroid Network Phase with 2 nm Feature Size by Blending of Lamellar and Cylindrical Forming Block Oligomers
title_full Stabilizing a Double Gyroid Network Phase with 2 nm Feature Size by Blending of Lamellar and Cylindrical Forming Block Oligomers
title_fullStr Stabilizing a Double Gyroid Network Phase with 2 nm Feature Size by Blending of Lamellar and Cylindrical Forming Block Oligomers
title_full_unstemmed Stabilizing a Double Gyroid Network Phase with 2 nm Feature Size by Blending of Lamellar and Cylindrical Forming Block Oligomers
title_short Stabilizing a Double Gyroid Network Phase with 2 nm Feature Size by Blending of Lamellar and Cylindrical Forming Block Oligomers
title_sort stabilizing a double gyroid network phase with 2 nm feature size by blending of lamellar and cylindrical forming block oligomers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9241014/
https://www.ncbi.nlm.nih.gov/pubmed/35783180
http://dx.doi.org/10.1021/jacsau.2c00101
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