基于激光诱导石墨烯的柔性微型超级电容器和三电纳米发电机的自供电应用

Mario César A. de Oliveira , Andre L. Freire , Iuri C.M. Candido , Younes Messaddeq , Jerome Lapointe , Julie Fréchette , Réal Vallée , Helinando P. de Oliveira
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摘要

开发基于石墨烯的电极以应用于储能和能量收集设备,是生产具有灵活性和良好电化学性能的可穿戴设备的重要战略。在此,我们探索了一种简单而高效的方法,即利用激光诱导石墨烯(LIG),通过直接从 Kapton 聚酰亚胺中生产石墨烯,并将图案转移到聚二甲基硅氧烷(TENG 的典型三极负极层)上,来生产互嵌式微型超级电容器(μSC)和三电纳米发电机(TENG)活性层的背电极。传统 TENG 的开路电压为 189.7 V,短路电流为 39.8 μA,功率为 302.5 μW(功率密度为 20.2 μW/cm2)。需要考虑的最重要方面是将背电极转移到聚二甲基硅氧烷的单步法,该方法只需最少的加工步骤即可实现摩擦层的形态控制和自供电行为,从而将 TENG/微型超级电容器集成到功率单元电池中。
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Flexible micro supercapacitor and triboelectric nanogenerator based on laser-induced graphene for self-powered applications

The development of graphene-based electrodes for application in energy storage and energy harvesting devices represents an important strategy for producing wearable devices with requisites of flexibility and good electrochemical performance. Herein, the use of laser-induced graphene (LIG) has been explored as a simple and efficient method for the production of interdigitated microsupercapacitors (μSCs) and back electrodes for triboelectric nanogenerators (TENGs) active layers by direct production of graphene from Kapton polyimide and by the transference of the pattern to polydimethylsiloxane (a typical tribonegative layer for TENG). An open circuit voltage of 189.7 V, short circuit current of 39.8 μA, and power of 302.5 μW (power density of 20.2 μW/cm2) was observed for the conventional TENG while an areal capacitance of 2.5 mF/cm2 with good retention in the energy generation and cyclability in energy storage was observed for the microsupercapacitor. The most relevant aspect to be considered is a single-step method for transference of back-electrode to the Poly(dimethylsiloxane) requiring minimal processing steps for morphology control in the friction layer and self-powered behavior for integration of TENG/microsupercapacitor in a power unit cell.

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