Kinetic Monte Carlo Simulations as a Tool for Unraveling the Impact of Solvent and Temperature on Polymer Topology for Self-Initiated Butyl Acrylate Radical Polymerizations at High Temperatures

IF 1.8 4区 工程技术 Q3 POLYMER SCIENCE
Jonas Mätzig, Marco Drache, Georg Drache, Sabine Beuermann
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引用次数: 2

Abstract

High-temperature butyl acrylate polymerizations in bulk and in solution are investigated experimentally and by kinetic Monte Carlo (kMC) simulations. The experimental data comprise conversion-time data, molar mass distributions, and branching levels per polymer chain derived from size-exclusion chromatography with a multiangle laser light scattering detector. A kMC model is established, which allows for the description of the impact of solvent and temperature on molar mass distribution as well as type and content of macromonomers. Within the study kinetic coefficients for transfer to solvent and the thermal self-initiation of the monomer are determined according to the Metropolis Hastings algorithm. The kMC simulations provide information, which are otherwise not accessible, for example, the number of branch points per molecule as a function of molar mass or the molar mass distribution of various macromonomer species. Moreover, molar ratios of mid-chain and chain-end radicals are at hand for temperatures up to 160°C, which are important for the interpretation of the experimentally and via simulation-derived polymer topology as a function of molar masses.

Abstract Image

动力学蒙特卡罗模拟作为揭示溶剂和温度对高温下自引发丙烯酸丁酯自由基聚合聚合物拓扑影响的工具
通过实验和动力学蒙特卡罗(kMC)模拟研究了丙烯酸丁酯在散装和溶液中的高温聚合。实验数据包括转换时间数据、摩尔质量分布和每个聚合物链的分支水平,这些数据来自多角度激光散射检测器的尺寸排除色谱。建立了一个kMC模型,该模型可以描述溶剂和温度对摩尔质量分布以及巨单体的类型和含量的影响。在本研究中,根据Metropolis Hastings算法确定了向溶剂转移的动力学系数和单体的热自引发系数。kMC模拟提供了其他方式无法获得的信息,例如,每个分子分支点的数量作为摩尔质量的函数或各种大单体物种的摩尔质量分布。此外,在高达160°C的温度下,中链和链端自由基的摩尔比是已知的,这对于通过实验和模拟推导的聚合物拓扑结构作为摩尔质量的函数的解释是重要的。
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来源期刊
Macromolecular Theory and Simulations
Macromolecular Theory and Simulations 工程技术-高分子科学
CiteScore
3.00
自引率
14.30%
发文量
45
审稿时长
2 months
期刊介绍: Macromolecular Theory and Simulations is the only high-quality polymer science journal dedicated exclusively to theory and simulations, covering all aspects from macromolecular theory to advanced computer simulation techniques.
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