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3D Printed Thermoelectric Polyurethane/Multiwalled Carbon Nanotube Nanocomposites: A Novel Approach towards the Fabrication of Flexible and Stretchable Organic Thermoelectrics

机译:3D印刷热电聚氨酯/多壁碳纳米管纳米复合材料:一种制造柔性伸缩有机热电梁的新方法

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摘要

Three-dimensional (3D) printing of thermoelectric polymer nanocomposites is reported for the first time employing flexible, stretchable and electrically conductive 3D printable thermoplastic polyurethane (TPU)/multiwalled carbon nanotube (MWCNT) filaments. TPU/MWCNT conductive polymer composites (CPC) have been initially developed employing melt-mixing and extrusion processes. TPU pellets and two different types of MWCNTs, namely the NC-7000 MWCNTs (NC-MWCNT) and Long MWCNTs (L-MWCNT) were used to manufacture TPU/MWCNT nanocomposite filaments with 1.0, 2.5 and 5.0 wt.%. 3D printed thermoelectric TPU/MWCNT nanocomposites were fabricated through a fused deposition modelling (FDM) process. Raman and scanning electron microscopy (SEM) revealed the graphitic nature and morphological characteristics of CNTs. SEM and transmission electron microscopy (TEM) exhibited an excellent CNT nanodispersion in the TPU matrix. Tensile tests showed no significant deterioration of the moduli and strengths for the 3D printed samples compared to the nanocomposites prepared by compression moulding, indicating an excellent interlayer adhesion and mechanical performance of the 3D printed nanocomposites. Electrical and thermoelectric investigations showed that L-MWCNT exhibits 19.8 ± 0.2 µV/K Seebeck coefficient (S) and 8.4 × 103 S/m electrical conductivity (σ), while TPU/L-MWCNT CPCs at 5.0 wt.% exhibited the highest thermoelectric performance (σ = 133.1 S/m, S = 19.8 ± 0.2 µV/K and PF = 0.04 μW/mK2) among TPU/CNT CPCs in the literature. All 3D printed samples exhibited an anisotropic electrical conductivity and the same Seebeck coefficient in the through- and cross-layer printing directions. TPU/MWCNT could act as excellent organic thermoelectric material towards 3D printed thermoelectric generators (TEGs) for potential large-scale energy harvesting applications.
机译:报告了使用柔性,可伸缩和导电的3D可印刷热塑性聚氨酯(TPU)/多壁碳纳米管(MWCNT)长丝的第一次使用热电聚合物纳米复合材料的三维(3D)印刷。最初开发了使用熔融混合和挤出方法的TPU / MWCNT导电聚合物复合材料(CPC)。 TPU颗粒和两种不同类型的MWCNT,即NC-7000MWCNT(NC-MWCNT)和长MWCNT(L-MWCNT)用于制备具有1.0,2.5和5.0重量%的TPU / MWCNT纳米复合丝。%。通过稠合的沉积建模(FDM)工艺制造3D印刷热电TPU / MWCNT纳米复合材料。拉曼和扫描电子显微镜(SEM)揭示了CNT的石墨性质和形态特征。 SEM和透射电子显微镜(TEM)在TPU基质中表现出优异的CNT纳米分布。与通过压缩成型制备的纳米复合材料相比,拉伸试验显示出3D印刷样品的模态和强度的显着劣化,表明3D印刷纳米复合材料的优异的层间粘附和机械性能。电气和热电研究表明,L-MWCNT表现出19.8±0.2μV/ k塞贝克系数(S)和8.4×103 s / m / m电导率(σ),而TPU / L-MWCNT CPC在5.0wt。%显示出最高的热电在文献中的TPU / CNT CPC中,性能(σ= 133.1 s / m,s = 19.8±0.2μV/ k和pf =0.04μw/ mk2)。所有3D印刷样品都表现出各向异性导电性和横向印刷方向上的相同探险系数。 TPU / MWCNT可以作为朝向3D印刷热电发电机(TEGS)的优异有机热电材料,用于潜在的大规模能量收集应用。

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