分别含有石墨烯纳米片、碳纳米管和碳纳米纤维的聚碳酸酯纳米复合材料的比较研究

Xiao Su , Zeyu Yang , Rongqiang Cheng , Ashjeev Luvnish , Sensen Han , Qingshi Meng , Nikki Stanford , Jun Ma
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摘要

在工业环境中,热塑性塑料经常被用作复合材料的基础材料,并经常使用微米级添加剂(如玻璃纤维)来增强复合材料的性能。本研究采用双螺杆挤出作为加工方法,将一种常见的热塑性塑料--聚碳酸酯(PC)与一维(1D)多壁碳纳米管(MWCNTs)、碳纳米纤维(CNFs)和二维(2D)石墨烯纳米颗粒(GNPs)进行复合。在 PC 基体中,GNPs 的分散相对均匀,MWCNTs 有两种分散状态,而 CNFs 则因挤压造成许多缺陷而缩短。在 10.0 wt%的浓度下,MWCNTs 使 PC 的电阻率从 4.2 × 1015 Ω-cm 降至 4.6 × 107 Ω-cm,GNPs 则使热导率从 0.13 W-m-1-K-1 提高到 0.38 W-m-1-K-1。浓度为 1.0 wt%的 GNPs、MWCNTs 和 CNFs 都改善了 PC 的机械性能,即杨氏模量分别增加了 13.8%、5.7% 和 13.8%,拉伸强度分别增加了 6.2%、11.7% 和 21.2%,冲击强度分别增加了 9.6%、10.2% 和 5.7%。当 PC/GNP 纳米复合材料的重量百分比为 10.0%时,PC 拉伸强度的降低幅度最小,而 PC/CNF 纳米复合材料的未缺口夏比冲击强度则略有增加,从 161 kJ/m2 增加到 186 kJ/m2。分析了这些纳米复合材料的结构-性能关系,并提出了相关机制。总之,双螺杆挤压被证明能有效地在 PC 中分散各种碳纳米材料。这项研究为工业界利用挤出法设计和制造热塑性塑料/碳纳米材料复合材料提供了指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A comparative study of polycarbonate nanocomposites respectively containing graphene nanoplatelets, carbon nanotubes and carbon nanofibers

In industrial settings, thermoplastics are frequently employed as the base materials for composites and often enhanced with micron-sized additives such as glass fibers for improved performance. This study employed twin-screw extrusion as the processing method to compound a common thermoplastic – polycarbonate (PC) with one dimensional (1D) multi-walled carbon nanotubes (MWCNTs), carbon nanofibers (CNFs) and two dimensional (2D) graphene nanoplatelets (GNPs). In the PC matrix, GNPs were found to relatively uniformly dispersed, MWCNTs were seen to have two states of dispersion, and CNFs were much shortened with many defects caused by the extrusion. At 10.0 wt%, MWCNTs reduced the electrical resistivity of PC from 4.2 × 1015 to 4.6 × 107 Ω·cm, and GNPs improved the thermal conductivity from 0.13 to 0.38 W·m−1·K−1. GNPs, MWCNTs and CNFs at 1.0 wt% all improved the mechanical properties of PC, i.e. increments of 13.8%, 5.7% and 13.8% for Young's modulus, 6.2%, 11.7% and 21.2% for tensile strength, and 9.6%, 10.2% and 5.7% for impact strength. At 10.0 wt%, the PC/GNP nanocomposite displayed the least reduction of tensile strength of PC whilst the PC/CNF nanocomposite slightly increased the un-notched Charpy impact strength from 161 to 186 kJ/m2. The structure-property relationship of these nanocompsoites was analysed, with the relavent mechanisms proposed. Overall, twin-screw extrusion proved effective for dispersing various carbon nanomaterials in PC. This work provides a guide for industry to design and manufacture thermoplastic/carbon nanomaterial composites using the extrusion method.

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