a.Department of Physics, Shanghai Technical Institute of Electronics & Information, Shanghai 201411, China
b.Department of Physics, Wenzhou University, Wenzhou 325035, China
20190147@wzu.edu.cn
收稿:2023-03-23,
修回:2023-5-24,
录用:2023-6-11,
网络首发:2023-07-19,
纸质出版:2023-09-01
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Yan, M.; Zhang, Y. T.; Wang, X. H. Nanoparticle-filled ABC star triblock copolymers: a dissipative particle dynamics study. Chinese J. Polym. Sci. 2023, 41, 1462–1476
Miao Yan, Ying-Tong Zhang, Xiang-Hong Wang. Nanoparticle-filled ABC Star Triblock Copolymers: A Dissipative Particle Dynamics Study[J]. Chinese Journal of Polymer Science, 2023, 41(9): 1462-1476.
Yan, M.; Zhang, Y. T.; Wang, X. H. Nanoparticle-filled ABC star triblock copolymers: a dissipative particle dynamics study. Chinese J. Polym. Sci. 2023, 41, 1462–1476 DOI: 10.1007/s10118-023-3021-4.
Miao Yan, Ying-Tong Zhang, Xiang-Hong Wang. Nanoparticle-filled ABC Star Triblock Copolymers: A Dissipative Particle Dynamics Study[J]. Chinese Journal of Polymer Science, 2023, 41(9): 1462-1476. DOI: 10.1007/s10118-023-3021-4.
The phase behavior of ABC star triblock copolymers filled with nanoparticles was studied by dissipative particle dynamics simulation. The results show that the low concentration nanoparticles will be distributed on the interface and have no effect on the microstructure. High concentration of filler will destroy the layered structure and cause extrusion of the tile structure. These conclusions are also confirmed by the analysis of their dynamic processes and mechanical properties.
The phase behavior of nanoparticle-filled ABC star triblock copolymers was investigated by dissipative particle dynamics simulation. Two typical structures
the three-color lamella and polygonal tiling structures
were selected to demonstrate the effect of filling the nanoparticle. Results showed that the filling effects were obvious on the lamellar structure but not on the tiling structure
where the high concentration of fillers can destroy the lamellar structures. The dynamic processes of nanoparticle filling were investigated for the lamellar and tiling structures
where three stages can be sorted by analyzing the system energies and chain conformations. Moreover
the mechanical properties were evaluated for the lamellar structures by exploring the interface tensions. The findings can help us understand the potential applications of microstructures based on complex block copolymers and nanoparticle mixtures.
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