University of Bath, Claverton Down, BA2 7AY Bath, U.K.
Haydale Ltd., Ammanford SA18 3BL, U.K.
ACS Appl Mater Interfaces. 2017 Mar 15;9(10):9161-9167. doi: 10.1021/acsami.6b16477. Epub 2017 Mar 3.
Thermal energy can be effectively converted into electricity using pyroelectrics, which act as small scale power generator and energy harvesters providing nanowatts to milliwatts of electrical power. In this paper, a novel pyroelectric harvester based on free-standing poly(vinylidene difluoride) (PVDF) was manufactured that exploits the high thermal radiation absorbance of a screen printed graphene ink electrode structure to facilitate the conversion of the available thermal radiation energy into electrical energy. The use of interconnected graphene nanoplatelets (GNPs) as an electrode enable high thermal radiation absorbance and high electrical conductivity along with the ease of deposition using a screen print technique. For the asymmetric structure, the pyroelectric open-circuit voltage and closed-circuit current were measured, and the harvested electrical energy was stored in an external capacitor. For the graphene ink/PVDF/aluminum system the closed circuit pyroelectric current improves by 7.5 times, the open circuit voltage by 3.4 times, and the harvested energy by 25 times compared to a standard aluminum/PVDF/aluminum system electrode design, with a peak energy density of 1.13 μJ/cm. For the pyroelectric device employed in this work, a complete manufacturing process and device characterization of these structures are reported along with the thermal conductivity of the graphene ink. The material combination presented here provides a new approach for delivering smart materials and structures, wireless technologies, and Internet of Things (IoT) devices.
热能可以通过热电材料有效地转化为电能,热电材料可以作为小型电源和能量收集器,提供纳瓦到毫瓦级的电力。本文制造了一种基于独立聚偏二氟乙烯(PVDF)的新型热电发电机,利用丝网印刷石墨烯油墨电极结构的高热辐射吸收率,将可用的热辐射能转化为电能。使用互联的石墨烯纳米片(GNPs)作为电极,不仅可以实现高热辐射吸收率和高导电性,而且可以通过丝网印刷技术轻松沉积。对于非对称结构,测量了热电开路电压和闭路电流,并将收集到的电能存储在外部电容器中。与标准的铝/PVDF/铝系统电极设计相比,石墨烯油墨/PVDF/铝系统的闭路热释电流提高了 7.5 倍,开路电压提高了 3.4 倍,收集的能量提高了 25 倍,峰值能量密度为 1.13 μJ/cm。对于本工作中使用的热释电器件,报告了这些结构的完整制造工艺和器件特性,以及石墨烯油墨的热导率。本文提出的材料组合为提供智能材料和结构、无线技术和物联网(IoT)设备提供了一种新方法。