具有可调阻尼性能的碳纳米管/聚合物纳米复合材料的界面工程

M. Talò, G. Lanzara, Maryam Karimzadeh, W. Lacarbonara
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引用次数: 0

摘要

在这项工作中,碳纳米管(CNT)纳米复合材料薄膜粘滑耗散的产生以及整体力学响应是通过开发三相纳米复合材料来定制的。这三个相分别由碳纳米管、位于碳纳米管表面的聚合物涂层和载体基质表示。特别是,聚苯乙烯(PS)层覆盖了随机分散在聚酰亚胺(PI)基体中的多壁碳纳米管(MWNTs)。涂层相与CNTs外侧壁紧密结合,保证了载荷传递机制的有效性,降低了材料的阻尼能力。涂层相可以被热激活来修饰,特别是降低碳纳米管基体的界面剪切强度(ISS),从而促进纳米复合材料的粘滑发生。ISS减少的根源在于涂层阶段的部分降解,特别是空洞的形成。通过削弱碳纳米管/聚合物界面区域,观察到材料阻尼能力显著增强。由单调和循环拉伸试验组成的广泛实验活动证明了这种新型多相材料设计的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Interface Engineering of CNT/Polymer Nanocomposites With Tunable Damping Properties
In this work, the arising of stick-slip dissipation as well as the global mechanical response of carbon nanotube (CNT) nanocomposite films are tailored by exploiting a three-phase nanocomposite. The three phases are represented by the CNTs, a polymer coating localized on the CNTs surface and a hosting matrix. In particular, a polystyrene (PS) layer coats multi-walled carbon nanotubes (MWNTs) that are randomly dispersed in a polyimide (PI) matrix. The coating phase is strongly bonded to the CNTs outer sidewalls ensuring the effectiveness of the load transfer mechanism and reducing the material damping capacity. The coating phase can be thermally-activated to modify, and in particular, decrease the CNT-matrix interfacial shear strength (ISS) thus facilitating the stick-slip onset in the nanocomposite. The ISS decrease finds its roots in a partial degradation of the coating phase and, in particular, in the formation of voids. By weakening the CNT/polymer interfacial region, a significant enhancement in the material damping capacity is observed. An extensive experimental campaign consisting of monotonic and cyclic tensile tests proved the effectiveness of this novel multi-phase material design.
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