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长链诱导的损耗效应在两重分形聚合物接枝纳米粒子的制备中的异常接枝。

A long chain-induced depletion effect for abnormal grafting in the preparation of bimodal bidisperse polymer-grafted nanoparticles.

机构信息

Key Laboratory of Theoretical Chemistry of Environment Ministry of Education, School of Chemistry, South China Normal University, Guangzhou, Guangdong, 510006, People's Republic of China.

South China Advanced Institute for Soft Matter Science and Technology, School of Molecular Science and Engineering, South China University of Technology, Guangzhou, 510640, China.

出版信息

Phys Chem Chem Phys. 2023 Feb 15;25(7):5627-5637. doi: 10.1039/d2cp04229k.

Abstract

One of the challenging problems in the research field of polymer nanocomposites is how to prepare nanocomposites with high grafting density and strong ability of dispersion at the same time. For nanocomposites composed of bimodal bidisperse polymer chains and nanoparticles, the above requirements can be met by rationally adjusting the ratio of long and short polymer chains. In this study, the process of grafting bimodal bidisperse polymer chains onto the surface of nanoparticles in a grafting-to manner was investigated computer simulation and theoretical methods. Three grafting strategies were designed: first short then long (SL) system, both short and long (Both) system and first long then short (LS) system. An abnormal phenomenon for the Both system was found by analyzing the grafting density of long and short polymer chains on the surface of nanoparticles. We speculate that the reason for this anomalous phenomenon is the "depletion effect" brought about by the long chains in the Both system. We employ the Polymer Reference Interaction Site Model (PRISM) theory to investigate this anomaly in-depth. By comparing the radial distribution function (RDF) predicted by the PRISM theory with the RDF results obtained by the molecular dynamics (MD) simulation, we found that with the increase of the number of long chains in the system, the grafting density of short polymer chains on the nanoparticle surface showed an obvious upward trend. The "depletion effect" brought by long chains was the main reason for higher short chains' grafting density of the Both system compared to the SL system. Our findings provide effective guidance for the design of nanoparticle-grafted bimodal bidisperse polymer chains and provide a theoretical basis for experimentation and production of polymer nanocomposites with better performance.

摘要

在聚合物纳米复合材料研究领域中,如何同时制备接枝密度高且分散能力强的纳米复合材料是一个具有挑战性的问题。对于由两峰双峰分布聚合物链和纳米粒子组成的纳米复合材料,可以通过合理调节长链和短链的比例来满足上述要求。在这项研究中,我们通过计算机模拟和理论方法研究了以接枝方式将两峰双峰分布聚合物链接枝到纳米粒子表面的过程。设计了三种接枝策略:先短后长(SL)体系、长短皆有(Both)体系和先长后短(LS)体系。通过分析长链和短链在纳米粒子表面的接枝密度,发现 Both 体系存在异常现象。我们推测这种异常现象的原因是 Both 体系中长链带来的“耗尽效应”。我们深入地运用聚合物参考相互作用站点模型(PRISM)理论来研究这种异常现象。通过比较 PRISM 理论预测的径向分布函数(RDF)与分子动力学(MD)模拟得到的 RDF 结果,我们发现随着体系中长链数量的增加,短链在纳米粒子表面的接枝密度呈现出明显的上升趋势。长链带来的“耗尽效应”是 Both 体系中短链接枝密度高于 SL 体系的主要原因。我们的研究结果为设计接枝两峰双峰分布聚合物链的纳米粒子提供了有效的指导,并为具有更好性能的聚合物纳米复合材料的实验和生产提供了理论依据。

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