scholarly journals Stable Frank–Kasper phases of self-assembled, soft matter spheres

2018 ◽  
Vol 115 (41) ◽  
pp. 10233-10238 ◽  
Author(s):  
Abhiram Reddy ◽  
Michael B. Buckley ◽  
Akash Arora ◽  
Frank S. Bates ◽  
Kevin D. Dorfman ◽  
...  

Single molecular species can self-assemble into Frank–Kasper (FK) phases, finite approximants of dodecagonal quasicrystals, defying intuitive notions that thermodynamic ground states are maximally symmetric. FK phases are speculated to emerge as the minimal-distortional packings of space-filling spherical domains, but a precise measure of this distortion and how it affects assembly thermodynamics remains ambiguous. We use two complementary approaches to demonstrate that the principles driving FK lattice formation in diblock copolymers emerge directly from the strong-stretching theory of spherical domains, in which a minimal interblock area competes with a minimal stretching of space-filling chains. The relative stability of FK lattices is studied first using a diblock foam model with unconstrained particle volumes and shapes, which correctly predicts not only the equilibrium σ lattice but also the unequal volumes of the equilibrium domains. We then provide a molecular interpretation for these results via self-consistent field theory, illuminating how molecular stiffness increases the sensitivity of the intradomain chain configurations and the asymmetry of local domain packing. These findings shed light on the role of volume exchange on the formation of distinct FK phases in copolymers and suggest a paradigm for formation of FK phases in soft matter systems in which unequal domain volumes are selected by the thermodynamic competition between distinct measures of shape asymmetry.

2020 ◽  
Vol 117 (29) ◽  
pp. 16764-16769 ◽  
Author(s):  
Guo Kang Cheong ◽  
Frank S. Bates ◽  
Kevin D. Dorfman

Compositionally asymmetric diblock copolymers provide an attractive platform for understanding the emergence of tetragonally close-packed, Frank–Kasper phases in soft matter. Block-polymer phase behavior is governed by a straightforward competition between chain stretching and interfacial tension under the constraint of filling space at uniform density. Experiments have revealed that diblock copolymers with insufficient conformational asymmetry to form Frank–Kasper phases in the neat-melt state undergo an interconversion from body-centered cubic (bcc) close-packed micelles to a succession of Frank–Kasper phases (σ to C14 to C15) upon the addition of minority-block homopolymer in the dry-brush regime, accompanied by the expected transition from bcc to hexagonally packed cylinders in the wet-brush regime. Self-consistent field theory data presented here qualitatively reproduce the salient features of the experimental phase behavior. A particle-by-particle analysis of homopolymer partitioning furnishes a basis for understanding the symmetry breaking from the high-symmetry bcc phase to the lower-symmetry Frank–Kasper phases, wherein the reconfiguration of the system into polyhedra of increasing volume asymmetry delays the onset of macroscopic phase separation.


2015 ◽  
Vol 48 (20) ◽  
pp. 7689-7697 ◽  
Author(s):  
Xingkun Man ◽  
Jiuzhou Tang ◽  
Pan Zhou ◽  
Dadong Yan ◽  
David Andelman

2013 ◽  
Vol 14 (2) ◽  
pp. 443-460 ◽  
Author(s):  
Kai Jiang ◽  
Chu Wang ◽  
Yunqing Huang ◽  
Pingwen Zhang

AbstractThe ordered patterns formed by microphase-separated block copolymer systems demonstrate periodic symmetry, and all periodic structures belong to one of 230 space groups. Based on this fact, a strategy of estimating the initial values of self-consistent field theory to discover ordered patterns of block copolymers is developed. In particular, the initial period of the computational box is estimated by the Landau-Brazovskii model as well. By planting the strategy into the whole-space discrete method, several new metastable patterns are discovered in diblock copolymers.


Author(s):  
Gaohang Chen ◽  
Hui Zhang ◽  
Teng Lu ◽  
Ying Jiang

A self-consistent field theory formalism based on the wormlike chain model is developed to investigate the stress–strain relation for mesostructures in diblock copolymers under the influence of chain rigidity.


Soft Matter ◽  
2011 ◽  
Vol 7 (11) ◽  
pp. 5128 ◽  
Author(s):  
Bart Vorselaars ◽  
Jaeup U. Kim ◽  
Tanya L. Chantawansri ◽  
Glenn H. Fredrickson ◽  
Mark W. Matsen

2016 ◽  
Vol 18 (15) ◽  
pp. 10309-10319 ◽  
Author(s):  
Ji Wu ◽  
Xianghong Wang ◽  
Yongyun Ji ◽  
Linli He ◽  
Shiben Li

The electric field induces the new phases and shifts the phase boundaries in phase diagrams for the diblock copolymers.


1999 ◽  
Vol 576 ◽  
Author(s):  
Anna C. Balazs ◽  
Chandralekha Singh ◽  
Valeriy V. Ginzburg

ABSTRACTWe analyze the thermodynamics of polymer-clay mixtures within the framework of density functional theory (DFT). The interaction potential between clay particles is calculated using the self-consistent field (SCF) method and is strongly dependent on the length and density of grafted short-chain organic modifiers. By combining the DFT and SCF techniques, we determine the role of the grafted chains on the equilibrium phase behavior of the mixtures.


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