K. Haydukivska, O. Kalyuzhnyi, V. Blavatska, J. Ilnytskyi
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引用次数: 2
摘要
在本文中,我们继续我们最近的分析[K]。Haydukivska et al., J. Mol. Liq., 2021, 328, 115456]在线性主链的两端有两个分支点并从它们开始的f1和f2侧臂的复杂分子,被称为pomm -pom聚合物。本文采用基于聚合物直接重整化的解析方法和基于耗散粒子动力学和蒙特卡罗方法的计算机模拟,分析了f1≠f2的不对称情况。考虑到无限稀释和良好的溶剂条件,我们研究了平均聚合物构象的分子不对称所起的作用。定量估计了这些分子的普遍大小和形状特征,以及它们的单个分支,f1和f2的所有功能。特别地,我们评估了具有相同分子量的对称和不对称泡泡球拓扑的旋转半径的大小比,并定量地揭示了分子的不对称性引起的有效尺寸的增加。我们还介绍和分析了不对称因素,并估计了由于侧星的存在而引起的质心偏移,这可以作为球团结构不对称的另一个特征。
Swelling of asymmetric pom-pom polymers in dilute solutions
In this paper we continue our recent analysis [K. Haydukivska et al., J. Mol. Liq., 2021, 328, 115456] of complex molecules with two branching points at both ends of the linear backbone with f1 and f2 side arms starting from them, known as the pom-pom polymers. Here, we analyze the asymmetric case, f1 ≠ f2, by applying both the analytical approach, based on the direct polymer renormalization, and computer simulations using both dissipative particle dynamics and Monte Carlo methods. We study the role played by the molecular asymmetry of average polymer conformations, considering the infinite dilution regime and good solvent conditions.The quantitative estimates are reported for the set of universal size and shape characteristics of such molecules and for their individual branches, all the functions of f1 and f2. In particular, we evaluate the size ratio of the gyration radii of symmetric and asymmetric pom-pom topologies with the same molecular weight and quantitatively reveal an increase of the effective size of a molecule caused by its asymmetry. We also introduce and analyse the asymmetry factor and estimate the shift of the center of mass caused by the presence of side stars, which can serve as another characteristic of the asymmetry of pom-pom structure.
期刊介绍:
Condensed Matter Physics contains original and review articles in the field of statistical mechanics and thermodynamics of equilibrium and nonequilibrium processes, relativistic mechanics of interacting particle systems.The main attention is paid to physics of solid, liquid and amorphous systems, phase equilibria and phase transitions, thermal, structural, electric, magnetic and optical properties of condensed matter. Condensed Matter Physics is published quarterly.