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Hexagonal Patterns in a Simplified Model for Block Copolymers

Bourne, D.P.; Peletier, M.A.; Roper, S.M.

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Authors

D.P. Bourne

M.A. Peletier

S.M. Roper



Abstract

In this paper we study a new model for patterns in two dimensions, inspired by diblock copolymer melts with a dominant phase. The model is simple enough to be amenable not only to numerics but also to analysis, yet sophisticated enough to reproduce hexagonally packed structures that resemble the cylinder patterns observed in block copolymer experiments. Starting from a sharp-interface continuum model, a nonlocal energy functional involving a Wasserstein cost, we derive the new model using Gamma-convergence in a limit where the volume fraction of one phase tends to zero. The limit energy is defined on atomic measures; in three dimensions the atoms represent small spherical blobs of the minority phase, and in two dimensions they represent thin cylinders of the minority phase. We then study local minimizers of the limit energy. Numerical minimization is performed in two dimensions by recasting the problem as a computational geometry problem involving power diagrams. The numerical results suggest that the small particles of the minority phase tend to arrange themselves on a triangular lattice as the number of particles goes to infinity. This is proved in the companion paper [D. P. Bourne, M. A. Peletier, and F. Theil, Comm. Math. Phys., 329 (2014), pp. 117--140] and agrees with patterns observed in block copolymer experiments. This is a rare example of a nonlocal energy-driven pattern formation problem in two dimensions where it can be proved that the optimal pattern is periodic.

Citation

Bourne, D., Peletier, M., & Roper, S. (2014). Hexagonal Patterns in a Simplified Model for Block Copolymers. SIAM Journal on Applied Mathematics, 74(5), 1315-1337. https://doi.org/10.1137/130922732

Journal Article Type Article
Acceptance Date Apr 17, 2014
Publication Date Sep 9, 2014
Deposit Date Dec 22, 2015
Publicly Available Date Jan 19, 2016
Journal SIAM Journal on Applied Mathematics
Print ISSN 0036-1399
Electronic ISSN 1095-712X
Publisher Society for Industrial and Applied Mathematics
Peer Reviewed Peer Reviewed
Volume 74
Issue 5
Pages 1315-1337
DOI https://doi.org/10.1137/130922732
Keywords Diblock copolymers, Small volume fraction limit, Energy-driven pattern formation, Nonlocal energy, Crystallization, Voronoi diagrams.
Related Public URLs http://arxiv.org/abs/1305.6540

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Copyright Statement
© 2014, Society for Industrial and Applied Mathematics




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