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Phase-field modeling of the formation of lamellar nanostructures in diblock copolymer thin films under inplanar electric fields

机译:非平面电场下二嵌段共聚物薄膜中层状纳米结构形成的相场模拟

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摘要

Recent experiments show that external inplanar electric field can be employed to guide the molecular self-assembly in diblock copolymer (BCP) thin films to form lamellar nanostructures with potential applications in nanotechnology. We study this self-assembly process through a detailed coarse-grained phase separation modeling. During the process, the free energy of the BCP films is modeled as the Ginzburg-Landau free energy with nonlocal interaction and electrostatic coupling. The resulting Cahn-Hilliard (CH) equation is solved using an efficient semi-implicit Fourier-spectral algorithm. Numerical results show that the morphology of order parameter formed in either symmetric or asymmetric BCP thin films is strongly influenced by the electric field. For symmetrical BCPs, highly ordered lamellar nanostructures evolved along the direction of the electric field. Phase nucleation and dislocation climbing in the BCP films predicted by the numerical simulation are in a good agreement with those observed in recent BCP electronanolithography. For asymmetrical BCPs, numerical simulation shows that nanodots are guided to align to the electric field. Furthermore, in the case of high electric field, nanodots formed in asymmetrical BCPs may further convert into highly ordered lamellar nanostructures (sphere-to-cylinder transition) parallel to the electric field. Effects of the magnitude of electric field, BCP asymmetry, and molecular interaction of BCPs on the self-assembly process are examined in detail using the numerical scheme developed in this study. The present study can be used for the prediction of the formation of nanostructures in BCP thin films and the quality control of BCP-based nanomanufacturing through optimizing the external electric fields. DOI: 10.1103/PhysRevE.77.031807
机译:最近的实验表明,外部平面电场可用于指导双嵌段共聚物(BCP)薄膜中的分子自组装形成层状纳米结构,在纳米技术中具有潜在的应用前景。我们通过详细的粗粒度相分离模型研究了这种自组装过程。在此过程中,将BCP薄膜的自由能建模为具有非局部相互作用和静电耦合的Ginzburg-Landau自由能。使用高效的半隐式傅里叶光谱算法求解所得的Cahn-Hilliard(CH)方程。数值结果表明,对称或不对称BCP薄膜中形成的有序参数的形貌受到电场的强烈影响。对于对称的BCP,高度有序的层状纳米结构沿电场方向发展。通过数值模拟预测的BCP薄膜中的相核化和位错攀升与最近BCP电子光刻技术中观察到的相一致。对于非对称BCP,数值模拟表明,纳米点被引导与电场对齐。此外,在高电场的情况下,在不对称BCP中形成的纳米点可能会进一步转换为与电场平行的高度有序的层状纳米结构(球到圆柱的过渡)。使用本研究开发的数值方案,详细检查了电场强度,BCP不对称性以及BCP的分子相互作用对自组装过程的影响。本研究可用于通过优化外部电场来预测BCP薄膜中纳米结构的形成以及基于BCP的纳米制造的质量控制。 DOI:10.1103 / PhysRevE.77.031807

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