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Thermoelectric Nanocomposite Foams Using Non-Conducting Polymers with Hybrid 1D and 2D Nanofillers

机译:使用不导电聚合物与混合1D和2D纳米填料的热电纳米复合泡沫

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摘要

A facile processing strategy to fabricate thermoelectric (TE) polymer nanocomposite foams with non-conducting polymers is reported in this study. Multilayered networks of graphene nanoplatelets (GnPs) and multi-walled carbon nanotubes (MWCNTs) are deposited on macroporous polyvinylidene fluoride (PVDF) foam templates using a layer-by-layer (LBL) assembly technique. The open cellular structures of foam templates provide a platform to form segregated 3D networks consisting of one-dimensional (1D) and/or two-dimensional (2D) carbon nanoparticles. Hybrid nanostructures of GnP and MWCNT networks synergistically enhance the material system’s electrical conductivity. Furthermore, the polymer foam substrates possess high porosity to provide ultra-low thermal conductivity without compromising the electrical conductivity of the TE nanocomposites. With an extremely low GnP loading (i.e., ~1.5 vol.%), the macroporous PVDF nanocomposites exhibit a thermoelectric figure-of-merit of ~10−3. To the best of our knowledge, this ZT value is the highest value reported for organic TE materials using non-conducting polymers and MWCNT/GnP nanofillers. The proposed technique represents an industrially viable approach to fabricate organic TE materials with enhanced energy conversion efficiencies. The current study demonstrates the potential to develop light-weight, low-cost, and flexible TE materials for green energy generation.
机译:本研究报道了一种用非导电聚合物制造热电(TE)聚合物纳米复合泡沫的简便加工策略。石墨烯纳米片(GnP)和多壁碳纳米管(MWCNT)的多层网络使用逐层(LBL)组装技术沉积在大孔聚偏二氟乙烯(PVDF)泡沫模板上。泡沫模板的开放式蜂窝结构提供了一个平台,可形成由一维(1D)和/或二维(2D)碳纳米粒子组成的分离3D网络。 GnP和MWCNT网络的混合纳米结构可协同增强材料系统的电导率。此外,聚合物泡沫基材具有高孔隙率以提供超低导热率,而不会损害TE纳米复合材料的电导率。 GnP负载极低(约1.5 vol。%)时,大孔PVDF纳米复合材料的热电品质因数约为10 -3 。据我们所知,此ZT值是报告的使用不导电聚合物和MWCNT / GnP纳米填料的有机TE材料的最高值。所提出的技术代表了一种工业上可行的方法来制造具有增强的能量转换效率的有机TE材料。当前的研究表明开发轻质,低成本和柔性TE材料用于绿色能源发电的潜力。

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