通过细胞动态模拟探索二嵌段共聚物的长程有序性

Muhammad Javed Iqbal, Inayatullah Soomro, Mumtaz Hussain Mahar, Usama Gulzar
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引用次数: 0

摘要

过去十年来,软材料在纳米技术的发展中发挥了重要作用。这些软材料中的二元共聚物系统开辟了新的研究途径,引入了块体和熔体状态下的实验和理论研究发现。为此,计算机编程通过数学模型推进了对软材料的模拟,从而能够通过长程有序模拟预测新型有序结构和形态。事实证明,使用这种方法既经济又省时。有许多数学模型可以通过计算机模拟预测二嵌段共聚物体系中的新型形态。然而,细胞动态模拟(CDS)因其在实现长程有序方面的高效性和稳健性而脱颖而出。本文介绍了一种细胞动态模拟模型,通过研究曲线坐标系中二嵌段共聚物体系内的流动、变形和相变来预测模拟结果。论文通过展示带有修改算法的 CDS 模型框图,深入分析了模型中涉及的偏微分方程的解释、理解、范围和应用。本文开发了一种数值上一致的 CDS 数值方案。基于曲线几何的 CDS 模型中涉及拉普拉斯,以解决规则和不规则系统边界问题。此外,还重点介绍了二嵌段共聚物体系的自组装、相分离机制、预测结果和应用。最后,还介绍了 CDS 模型的结果,以便与其他模型进行比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exploring Long-Range Order in Diblock Copolymers through Cell Dynamic Simulations
Soft materials have played an important role in the development of nanotechnology over the past decade. Diblock copolymer systems in these soft materials have opened up new avenues of research, introducing discoveries in experimental and theoretical research in the bulk and melt states. To this end, computer programming has advanced the simulation of soft materials through mathematical models that have enabled the prediction of novel ordered structures and morphologies from simulations on long-range order. Using this approach proved to be cost-effective and time-efficient. There are many mathematical models for predicting novel morphologies in diblock copolymer systems by computer simulation. Still, cell dynamic simulation (CDS) stands out for its efficiency and robustness in achieving long-range order. This paper presents a cell dynamic simulation model for predicting simulation results by examining flow, deformation and phase transitions within diblock copolymer systems in curvilinear coordinate systems. The paper insight into the interpretation, understanding, scope, and application of the partial differential equations involved in the model by presenting a block diagram of the CDS model with a modified algorithm. A numerically consistent CDS numerical scheme is developed. Laplacian is involved in the CDS model based on curvilinear geometries to solve regular and irregular system boundaries. Also, self-assembly, phase separation mechanism, predicted results and applications in diblock copolymer systems are highlighted. Finally, the results of the CDS model are also presented for comparison with other models.
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