TY - JOUR
T1 - Topological Transition in Multicyclic Chains with Structural Symmetry Inducing Stress-Overshoot Phenomena in Multicyclic/Linear Blends under Biaxial Elongational Flow
AU - Murashima, Takahiro
AU - Hagita, Katsumi
AU - Kawakatsu, Toshihiro
N1 - Funding Information:
T.M. thanks Prof. T. Taniguchi, Prof. M. Sugimoto, Prof. J.-I. Takimoto, Prof. S. K. Sukumaran, Prof. T. Uneyama, Prof. T. Honda, and Dr. Y. Tomiyoshi for their fruitful discussions, comments, and encouragement. The authors thank Prof. H. Jinnai, Prof. T. Satoh, and Prof. T. Deguchi for their support and encouragement. T.M. and T.K. thank the collaboration program of the Advanced Imaging and Modeling Center for Soft-materials (AIMcS) of Tohoku University. For the computations in this work, the authors were partially supported by the Supercomputer Center, Institute for Solid State Physics, University of Tokyo; MASAMUNE-IMR at the Center for Computational Materials Science, Institute for Materials Research, Tohoku University; Grand Chariot and Polaire at Hokkaido University Information Initiative Center; Flow at Nagoya University Information Technology Center; SQUID at Cybermedia Center, Osaka University; Fugaku at RIKEN Center for Computational Science; the Joint Usage/Research Center for Interdisciplinary Large-Scale Information Infrastructures (JHPCN); and the High-Performance Computing Infrastructure (HPCI) in Japan: hp200048, hp200168, hp210102, hp210132, hp220019, hp220104, hp220113, hp220114, jh210035, and jh220038. This work was partly financially supported by JSPS KAKENHI, Japan, grant nos JP18H04494, JP19H00905, JP20K03875, JP20H04649, and JP21H00111 and JST CREST, Japan, grant nos JPMJCR1993 and JPMJCR19T4. The authors thank Editage ( www.editage.com ) for the English language editing.
Publisher Copyright:
© 2022 American Chemical Society. All rights reserved.
PY - 2022/11/8
Y1 - 2022/11/8
N2 - Blends of multicyclic and linear polymers under biaxial elongational flow were analyzed using coarse-grained molecular dynamics simulations. The multicyclic/linear blends displayed overshoot in the normal stress difference at the start-up of the biaxial elongational flow. This overshoot was steeper for multicyclic/linear blends than for our previously reported monocyclic/linear blends [Murashima, T.; Hagita, K.; Kawakatsu, T. Macromolecules2021,54, 7210-7225]. Investigation of the origin of the overshoot in the multicyclic/linear blends revealed a different mechanism than that previously observed in our monocyclic/linear blends. Specifically, a "topological transition" mechanism comprising a morphological change from the open- to closed-ring state was observed in the multicyclic chains, but not in the monocyclic chains. This topological transition drastically changes the stress of the rings. Although the topological transition was also observed in asymmetric-multicyclic/linear blends, no stress overshoot appeared, owing to the asymmetry in the multicyclic chains. Therefore, we hypothesized that the structural symmetry in multicyclic chains is indispensable for the overshoot behavior to occur. We determined that the topological transition in multicyclic chains with structural symmetry induces the stress-overshoot behavior in multicyclic/linear blends under biaxial elongational flow.
AB - Blends of multicyclic and linear polymers under biaxial elongational flow were analyzed using coarse-grained molecular dynamics simulations. The multicyclic/linear blends displayed overshoot in the normal stress difference at the start-up of the biaxial elongational flow. This overshoot was steeper for multicyclic/linear blends than for our previously reported monocyclic/linear blends [Murashima, T.; Hagita, K.; Kawakatsu, T. Macromolecules2021,54, 7210-7225]. Investigation of the origin of the overshoot in the multicyclic/linear blends revealed a different mechanism than that previously observed in our monocyclic/linear blends. Specifically, a "topological transition" mechanism comprising a morphological change from the open- to closed-ring state was observed in the multicyclic chains, but not in the monocyclic chains. This topological transition drastically changes the stress of the rings. Although the topological transition was also observed in asymmetric-multicyclic/linear blends, no stress overshoot appeared, owing to the asymmetry in the multicyclic chains. Therefore, we hypothesized that the structural symmetry in multicyclic chains is indispensable for the overshoot behavior to occur. We determined that the topological transition in multicyclic chains with structural symmetry induces the stress-overshoot behavior in multicyclic/linear blends under biaxial elongational flow.
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U2 - 10.1021/acs.macromol.2c01579
DO - 10.1021/acs.macromol.2c01579
M3 - Article
AN - SCOPUS:85141462978
SN - 0024-9297
VL - 55
SP - 9358
EP - 9372
JO - Macromolecules
JF - Macromolecules
IS - 21
ER -