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Poly(vinylidene fluoride)/Graphene Nano-Platelets Electrically Conductive Composite Foam for Thermoelectric Applications

机译:聚偏二氟乙烯/石墨烯纳米片热电应用导电复合泡沫

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摘要

In this paper, we present the next generation of polymer based composite foam material fabricated from poly(vinylidene fluoride) (PVDF) and graphene nano-platelets (GNPs) as secondary fillers. We discovered that such composite material has thermoelectric properties and has the potential to be used in energy harvesting applications. The samples were fabricated though melt blending methods, which is a cheaper, simpler process and can be easily scaled up to industrial level for mass production. Our results indicate that melt blending processes can produce either similar or superior results compared to traditional solvent casting methods. In addition, we utilized a novel batch foaming method and successfully created closed-cell structure for the composite material. Our results also show that the thermal conductivity of PVDF/GNP foam samples have approximately an order of magnitude drop compared to solid samples, which is desired for thermoelectric materials. Furthermore, we observed a change in the electrical conductivity threshold of the GNP fillers after foaming. We report a Seebeck coefficient close to 60 μV/K for 15 wt% GNP/PVDF foam samples, which is approximately 3 times higher than values reported previously.
机译:在本文中,我们介绍了由聚偏二氟乙烯(PVDF)和石墨烯纳米片(GNPs)作为辅助填料制成的下一代基于聚合物的复合泡沫材料。我们发现这种复合材料具有热电特性,并且有潜力用于能量收集应用中。样品是通过熔融共混法制造的,这是一种更便宜,更简单的工艺,并且可以轻松扩大规模以达到大规模生产的工业水平。我们的结果表明,与传统的溶剂浇铸方法相比,熔融共混工艺可以产生相似或更好的结果。此外,我们采用了一种新颖的间歇发泡方法,并成功地为复合材料创建了闭孔结构。我们的结果还表明,与固体样品相比,PVDF / GNP泡沫样品的热导率下降了大约一个数量级,这是热电材料所希望的。此外,我们观察到发泡后GNP填料的电导率阈值发生了变化。对于15 wt%的GNP / PVDF泡沫样品,我们报告的塞贝克系数接近60μV/ K,比以前报道的值高约3倍。

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