arXiv · 1509.01292
Magnetic alignment of block copolymer microdomains by intrinsic chain anisotropy
Abstract
We examine the role of intrinsic chain susceptibility anisotropy in magnetic field directed self-assembly of a block copolymer using \textit{in situ} X-ray scattering. Alignment of a lamellar mesophase is observed on cooling across the disorder-order transition with the resulting orientational order inversely proportional to the cooling rate. We discuss the origin of the susceptibility anisotropy, $Δχ$, that drives alignment, and calculate its magnitude using coarse-grained molecular dynamics to sample conformations of surface-tethered chains, finding $Δχ\approx 2\times10^{-8}$. From field-dependent scattering data we estimate grains of $\approx1.2$ $μ$m are present during alignment. These results demonstrate that intrinsic anisotropy is sufficient to support strong field-induced mesophase alignment and suggest a versatile strategy for field control of orientational order in block copolymers.
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Yekaterina Rokhlenko, Kai Zhang, Manesh Gopinadhan, Steve R. Larson, Pawel W. Majewski, Kevin G. Yager, Padma Gopalan, Corey S. O'Hern, Chinedum O. Osuji. 2015-09-03. Magnetic alignment of block copolymer microdomains by intrinsic chain anisotropy. https://doi.org/10.1103/physrevlett.115.258302
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