Chemistry and Nanoscience Center, National Renewable Energy Laboratory, Golden, CO, 80401-3305, USA.
Department of Mechanical Engineering, Texas A&M University, College Station, TX, 77843-3003, USA.
Adv Mater. 2018 Mar;30(11). doi: 10.1002/adma.201704386. Epub 2018 Jan 22.
Conversion of waste heat to voltage has the potential to significantly reduce the carbon footprint of a number of critical energy sectors, such as the transportation and electricity-generation sectors, and manufacturing processes. Thermal energy is also an abundant low-flux source that can be harnessed to power portable/wearable electronic devices and critical components in remote off-grid locations. As such, a number of different inorganic and organic materials are being explored for their potential in thermoelectric-energy-harvesting devices. Carbon-based thermoelectric materials are particularly attractive due to their use of nontoxic, abundant source-materials, their amenability to high-throughput solution-phase fabrication routes, and the high specific energy (i.e., W g ) enabled by their low mass. Single-walled carbon nanotubes (SWCNTs) represent a unique 1D carbon allotrope with structural, electrical, and thermal properties that enable efficient thermoelectric-energy conversion. Here, the progress made toward understanding the fundamental thermoelectric properties of SWCNTs, nanotube-based composites, and thermoelectric devices prepared from these materials is reviewed in detail. This progress illuminates the tremendous potential that carbon-nanotube-based materials and composites have for producing high-performance next-generation devices for thermoelectric-energy harvesting.
将废热转换为电压有可能显著降低许多关键能源领域(如交通运输和发电部门以及制造业)的碳足迹。热能也是一种丰富的低通量源,可以用来为便携式/可穿戴电子设备以及偏远无电网地区的关键部件提供动力。因此,人们正在探索许多不同的无机和有机材料,以挖掘它们在热电能源收集设备中的潜力。碳基热电材料特别有吸引力,因为它们使用无毒、丰富的原料,易于采用高通量的溶液相制造工艺,并且其低质量可实现高比能量(即 W g )。单壁碳纳米管(SWCNT)是一种独特的一维碳同素异形体,具有结构、电学和热学性能,可实现高效的热电能量转换。在这里,详细回顾了在理解 SWCNT、基于纳米管的复合材料以及由这些材料制备的热电器件的基本热电性能方面所取得的进展。这一进展充分展示了基于碳纳米管的材料和复合材料在生产用于热电能源收集的高性能下一代器件方面所具有的巨大潜力。