Crystallization kinetics and nanoparticle ordering in semicrystalline polymer nanocomposites

成核 结晶 材料科学 聚合物 聚合物结晶 结晶度 纳米复合材料 纳米颗粒 化学工程 色散(光学) 聚合物纳米复合材料 高分子化学 纳米技术 复合材料 化学 有机化学 工程类 物理 光学
作者
Abdullah S. Altorbaq,Alejandro A. Krauskopf,Xiangning Wen,Ricardo A. Pérez‐Camargo,Yunlan Su,Dujin Wang,Alejandro J. Müller,Sanat K. Kumar
出处
期刊:Progress in Polymer Science [Elsevier]
卷期号:128: 101527-101527 被引量:21
标识
DOI:10.1016/j.progpolymsci.2022.101527
摘要

There has been considerable interest in the nucleation and crystallization of polymers in the presence of nanoparticles (NPs, or nanofillers in general, NFs). Most of the extensive work in this area has focused on anisotropic, non-Brownian NFs (e.g., clay sheets, carbon nanotubes) whose spatial dispersion state in these nanocomposites is controlled by the process by which they are formed. Hence, NF spatial dispersion is generally limited and often remains poorly characterized. Thermodynamic handles that can be used to control NF dispersion state in the polymer melt include (a) favorable interactions between the polymer chains and the bare NP surfaces, or (b) the density and length of the chains, with the same chemistry as the matrix, grafted to the NP surface. These relatively large NFs merely act as stationary objects that affect the kinetics of nucleation by providing heterogeneous sites, and the crystallization rate by confining the polymer in the melt state. The dispersion state of the NFs can dramatically affect the nucleation and crystallization of the matrix, but in most cases reported, the NFs increase nucleation efficiency relative to the neat polymer. At higher NF loadings, the effect of polymer confinement by the NFs dominates, leading to a decrease in crystal growth rates. This review describes the most important lessons learned from these commonly studied systems and then extends to polymer composite systems containing small, mobile spherical NPs (typically smaller than 100 nm in size). The role of NP mobility, which provides for dynamic confinement of the polymer melt, on the kinetics of polymer crystallization (nucleation, growth, and overall crystallization) and how this behavior is mostly consistent with the case of immobile NF is a second important focus of this review. In addition to the role of NFs on crystallization kinetics, recently reported nanoparticle ordering phenomena such as the effect of matrix crystallization on the organization of small spherical NPs within the amorphous regions of the semicrystalline morphology are discussed. Such phenomena are clearly not observed for large NFs and hence provide a point of departure from past works in this area.
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