Effect of initial solvent concentration on the structure and property of polymer nanocomposites

IF 2.2 4区 工程技术 Q2 MECHANICS
Ga Young Kim, Tae Yeon Kong, So Youn Kim
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引用次数: 1

Abstract

In this study, we investigate how the initial solvent concentration can influence the final structure and property of the polymer nanocomposites (PNCs). To produce the PNCs, nanoparticles (NPs) and polymers are first required to disperse in a good solvent and then the dispersing solvent quickly evaporates. Previous studies found that controlling the evaporation rate of solvents or drying conditions of solution can change the structure of PNCs; however, the colloidal stability of the NP-polymer mixtures depending on the solvent concentrations has not been much considered. In the NP-polymer colloidal mixture as a precursor system of PNC, the microstructure of the NP dispersion is determined by the net interaction between particles, which may sensitively vary depending on the polymer/solvent concentration. The evaporation of the solvent accompanying the PNC manufacturing process results in a continuous change in the component concentration, which means that the interaction between particles can be continuously changed. We found that the varying initial concentrations in NP-polymer mixtures with different amount of the solvent indeed changes the initial dispersion state of the NPs, which ultimately determined the final microstructure and the physical properties of the PNCs.

Abstract Image

初始溶剂浓度对聚合物纳米复合材料结构和性能的影响
在这项研究中,我们研究了初始溶剂浓度如何影响聚合物纳米复合材料(pnc)的最终结构和性能。为了制造纳米颗粒,纳米颗粒和聚合物首先需要分散在良好的溶剂中,然后分散溶剂迅速蒸发。以往的研究发现,控制溶剂的蒸发速率或溶液的干燥条件可以改变pnc的结构;然而,np -聚合物混合物的胶体稳定性随溶剂浓度的变化并没有得到充分的研究。在NP-聚合物胶体混合物中,作为PNC的前驱体系,NP分散体的微观结构是由粒子之间的净相互作用决定的,这种相互作用可能会随着聚合物/溶剂浓度的变化而敏感地变化。伴随PNC制造过程的溶剂蒸发导致组分浓度的连续变化,这意味着颗粒之间的相互作用可以连续改变。我们发现,不同溶剂用量的np -聚合物混合物中不同的初始浓度确实改变了NPs的初始分散状态,最终决定了pnc的最终微观结构和物理性质。
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来源期刊
Korea-Australia Rheology Journal
Korea-Australia Rheology Journal 工程技术-高分子科学
CiteScore
2.80
自引率
0.00%
发文量
28
审稿时长
>12 weeks
期刊介绍: The Korea-Australia Rheology Journal is devoted to fundamental and applied research with immediate or potential value in rheology, covering the science of the deformation and flow of materials. Emphases are placed on experimental and numerical advances in the areas of complex fluids. The journal offers insight into characterization and understanding of technologically important materials with a wide range of practical applications.
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