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纳米颗粒超声辅助三角晶格状排列分散对环氧-TiO纳米复合材料物理和力学性能的影响

Impact of ultrasonic assisted triangular lattice like arranged dispersion of nanoparticles on physical and mechanical properties of epoxy-TiO nanocomposites.

作者信息

Goyat M S, Ghosh P K

机构信息

Department of Metallurgical & Materials Engineering, Indian Institute of Technology Roorkee, Roorkee 247 667, India.

Department of Metallurgical & Materials Engineering, Indian Institute of Technology Roorkee, Roorkee 247 667, India.

出版信息

Ultrason Sonochem. 2018 Apr;42:141-154. doi: 10.1016/j.ultsonch.2017.11.019. Epub 2017 Nov 13.

Abstract

Emerging ex-situ technique, ultrasonic dual mixing (UDM) offers unique and hitherto unapproachable opportunities to alter the physical and mechanical properties of polymer nanocomposites. In this study, triangular lattice-like arranged dispersion of TiO nanoparticles (average size ∼ 48 nm) in the epoxy polymer has been attained via concurrent use of a probe ultra-sonicator and 4 blades pitched impeller which collectively named as UDM technique. The UDM processing of neat epoxy reveals the generation of triangular lattice-like arranged nanocavities with nanoscale inter-cavity spacing. The UDM processing of epoxy-TiO nanocomposites reveals two unique features such as partial and complete entrapping of the nanoparticles by the nanocavities leading the arranged dispersion of particles in the epoxy matrix. Pristine TiO nanoparticles were dispersed in the epoxy polymer at loading fractions of up to 20% by weight. The results display that the arranged dispersion of nanoparticles is very effective at enhancing the glass transition temperature (T) and tensile properties of the epoxy at loading fractions of 10 wt%. We quantify a direct relationship among three important parameters such as nanoparticle content, cluster size, and inter-particle spacing. Our results offer a novel understanding of these parameters on the T and tensile properties of the epoxy nanocomposites. The tensile fracture surfaces revealed several toughening mechanisms such as particle pull-out, plastic void growth, crack deflection, crack bridging and plastic deformation. We show that a strong nanoparticle-matrix interface led to the enhanced mechanical properties due to leading toughening mechanisms such as crack deflection, plastic deformation and particle pull-out. We showed that the UDM has an inordinate prospective to alter the dispersion state of nanoparticles in viscous polymer matrices.

摘要

新兴的非原位技术——超声双混合(UDM)为改变聚合物纳米复合材料的物理和机械性能提供了独特且前所未有的机遇。在本研究中,通过同时使用探针超声发生器和四叶片变螺距叶轮(统称为UDM技术),实现了环氧聚合物中三角形晶格状排列的TiO纳米颗粒(平均尺寸约48nm)的分散。纯环氧树脂的UDM加工揭示了具有纳米级腔间距的三角形晶格状排列的纳米腔的产生。环氧-TiO纳米复合材料的UDM加工揭示了两个独特特征,即纳米腔对纳米颗粒的部分和完全包裹,从而导致颗粒在环氧基质中有序分散。原始TiO纳米颗粒以高达20%的重量分数分散在环氧聚合物中。结果表明,在10wt%的负载分数下,纳米颗粒的有序分散在提高环氧树脂的玻璃化转变温度(T)和拉伸性能方面非常有效。我们量化了纳米颗粒含量、团聚体尺寸和颗粒间距这三个重要参数之间的直接关系。我们的结果为这些参数对环氧纳米复合材料的T和拉伸性能的影响提供了新的认识。拉伸断裂表面揭示了几种增韧机制,如颗粒拔出、塑性空洞生长、裂纹偏转、裂纹桥接和塑性变形。我们表明,由于裂纹偏转、塑性变形和颗粒拔出等主要增韧机制,强大 的纳米颗粒-基体界面导致了机械性能的增强。我们表明,UDM在改变粘性聚合物基体中纳米颗粒的分散状态方面具有巨大的潜力。

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