a.Xinjiang Laboratory of Phase Transitions and Microstructures in Condensed Matter Physics, College of Physical Science and Technology, Yili Normal University, Yining 835000, China
b.School of Chemical Engineering and Light Industry, Guangdong University of Technology, Guangzhou 510006, China
mmding@gdut.edu.cn
收稿:2022-10-15,
修回:2022-11-14,
录用:2022-11-25,
网络首发:2023-02-01,
纸质出版:2023-09-01
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Hao, P.; Mai, X. H.; Chen, Q. Y.; Ding, M. M. Conformation of an amphiphilic comb-like copolymer in a selective solvent. Chinese J. Polym. Sci. 2023, 41, 1386–1391
Peng Hao, Xing-Hong Mai, Qiao-Yue Chen, et al. Conformation of an Amphiphilic Comb-like Copolymer in a Selective Solvent[J]. Chinese Journal of Polymer Science, 2023, 41(9): 1386-1391.
Hao, P.; Mai, X. H.; Chen, Q. Y.; Ding, M. M. Conformation of an amphiphilic comb-like copolymer in a selective solvent. Chinese J. Polym. Sci. 2023, 41, 1386–1391 DOI: 10.1007/s10118-023-2912-8.
Peng Hao, Xing-Hong Mai, Qiao-Yue Chen, et al. Conformation of an Amphiphilic Comb-like Copolymer in a Selective Solvent[J]. Chinese Journal of Polymer Science, 2023, 41(9): 1386-1391. DOI: 10.1007/s10118-023-2912-8.
Using Brownian dynamics simulations
we find that
for an amphiphilic comb-like copolymer in a selective solvent
there is an optimal total degree of polymerization to form spherical micelles. And when the total degree of polymerization further increases
the spherical micelle will be transformed into a cylindrical micelle.
We study the conformation of an amphiphilic comb-like copolymer in a selective solvent by using Brownian dynamics simulations. Our results demonstrate that
there is an optimal total degree of polymerization to form spherical micelles. Only when the total degree of polymerization is less than the optimal total degree of polymerization
a unimolecular spherical micelle can be formed
otherwise
the spherical micelle will be transformed into a cylindrical micelle. When the total degree of polymerization is less than the optimal total degree of polymerization
the radius of gyration and the stretching factor meet an exponential relationship
where the power exponent decreases with the increase of the length of hydrophilic side chains. The fundamental principles uncovered here afford insights for the optimization of molecular design of amphiphilic comb-like copolymers in various applications.
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