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Studies of Electrical and Thermal Conductivities of Sheared Multi-Walled Carbon Nanotube with Isotactic Polypropylene Polymer Composites

机译:等规聚丙烯聚合物复合材料的剪切多壁碳纳米管的电导率和导热率研究

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摘要

Polymer nanocomposite materials of higher thermal and electrical transport properties are important to nanotechnology applications such as thermal management, packaging, labelling and the textile industry. In this work, thermal and electrical conductivities in nanocomposites of multi-walled carbon nanotubes (MWCNT) and isotactic polypropylene (iPP) are investigated in terms of MWCNT loading, temperature dependence, and anisotropy caused by melt shearing. IPP/MWCNT nanocomposites show a significant increase in thermal and electrical conductivity with increasing MWCNT loading, reaching 17.5 W/m K and 10-6 S/m, respectively, at a MWCNT 5.0 weight percentage at 40°C. The increase in MWCNT/iPP is more than would be expected based on the additivity rule, and suggests a reduction of the interfacial thermal electrical resistance at nanotube-nanotube junctions and the nanotube-matrix interface. The anisotropy in both conductivities was observed to be larger at low temperature and to disappear at higher temperature due to isotropic electrical and thermal contact in both directions. Oriented MWCNT/iPP nanocomposites exhibit higher electrical and thermal conductivities, attributed primarily by orientation of nanotubes due to the shearing fabrication process.
机译:具有更高的热和电传输特性的聚合物纳米复合材料对于诸如热管理,包装,标签和纺织工业等纳米技术应用非常重要。在这项工作中,研究了多壁碳纳米管(MWCNT)和全同立构聚丙烯(iPP)纳米复合材料中的热导率和电导率,具体取决于MWCNT的载荷,温度依赖性以及熔体剪切引起的各向异性。 IPP / MWCNT纳米复合材料显示出随着碳纳米管负载的增加,热导率和电导率显着增加,在40°C下,MWCNT 5.0重量百分比分别达到17.5 W / m K和10-6 S / m。 MWCNT / iPP的增加超过了基于可加性规则的预期,表明纳米管-纳米管结和纳米管-矩阵界面的界面热阻降低。由于在两个方向上各向同性的电接触和热接触,观察到两种电导率的各向异性在低温下更大,而在更高温度下消失。定向的MWCNT / iPP纳米复合材料表现出更高的电导率和导热率,这主要归因于剪切制造过程中纳米管的定向。

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