Jang Wonjun, Cho Hyun A, Choi Kyungwho, Park Yong Tae
Department of Mechanical Engineering, Myongji University, Yongin, Gyeonggi 17058, Korea.
New Transportation Innovative Research Center, Korea Railroad Research Institute, 176, Cheoldobangmulgwan-ro, Uiwang-si, Gyeonggi-do 16105, Korea.
Micromachines (Basel). 2018 Nov 28;9(12):628. doi: 10.3390/mi9120628.
Recently, with the miniaturization of electronic devices, problems with regard to the size and capacity of batteries have arisen. Energy harvesting is receiving significant attention to solve these problems. In particular, the thermoelectric generator (TEG) is being studied for its ability to harvest waste heat energy. However, studies on organic TEGs conducted thus far have mostly used conductive polymers, making the application range of TEGs relatively narrow. In this study, we fabricated organic TEGs using carbonaceous nanomaterials (i.e., graphene nanoplatelet (GNP) and single-walled carbon nanotube (SWNT)) with polyelectrolytes (i.e., poly(vinyl alcohol) (PVA) and poly (diallyldimethyl ammonium chloride) (PDDA)) via layer-by-layer (LbL) coating on polymeric substrates. The thermoelectric performance of the carbonaceous multilayer structure was measured, and it was confirmed that the thermoelectric performance of the TEG in this study was not significantly different from that of the existing organic TEG fabricated using the conductive polymers. The 10 bilayer SWNT thin films with polyelectrolyte exhibited a thermopower of -14 μV·K and a power factor of 25 μW·mK. Moreover, by simply changing the electrolyte, - or -type TEGs could be easily fabricated with carbonaceous nanomaterials via the LbL process. Also, by just changing the electrolyte, - or -type of TEGs could be easily fabricated with carbonaceous nanomaterials with a layer-by-layer process.
近年来,随着电子设备的小型化,电池的尺寸和容量问题日益凸显。能量收集作为解决这些问题的方法受到了广泛关注。特别是,热电发电机(TEG)因其能够收集废热能量而受到研究。然而,迄今为止对有机TEG的研究大多使用导电聚合物,这使得TEG的应用范围相对狭窄。在本研究中,我们通过在聚合物基底上逐层(LbL)涂覆,使用碳质纳米材料(即石墨烯纳米片(GNP)和单壁碳纳米管(SWNT))与聚电解质(即聚乙烯醇(PVA)和聚二烯丙基二甲基氯化铵(PDDA))制备了有机TEG。测量了碳质多层结构的热电性能,结果证实本研究中TEG的热电性能与使用导电聚合物制备的现有有机TEG相比无显著差异。具有聚电解质的10层双壁碳纳米管薄膜表现出-14 μV·K的热电动势和25 μW·mK的功率因子。此外,通过简单地改变电解质,利用碳质纳米材料通过LbL工艺可以轻松制备n型或p型TEG。同样,仅通过改变电解质,利用碳质纳米材料通过逐层工艺就可以轻松制备n型或p型的TEG。