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首页> 外文期刊>Nano Energy >Laser-processed graphene based micro-supercapacitors for ultrathin, rollable, compact and designable energy storage components
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Laser-processed graphene based micro-supercapacitors for ultrathin, rollable, compact and designable energy storage components

机译:激光处理的基于石墨烯的微型超级电容器,用于超薄,可卷曲,紧凑和可设计的储能组件

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With the development of wearable/flexible electronics, a formidable challenge is to integrate electronic components which were large in their original size into a flexible, thin, and arbitrary layout. As an in-dispensible component in electronics, commercial micro-supercapacitors are disadvantageous in their clumsy cuboid geometry and limited capacity, and are not promising for future applications. In comparison, film-like micro-supercapacitors are superior in miniaturized system integration since they can be folded to fit in restricted spaces while maintaining a high level of volumetric energy density. Here, we carried out a benchmark study of a state-of-the-art well-packaged thin film micro-supercapacitor toward commercial micro-supercapacitor and aluminum electrolyte capacitor. The micro-planar supercapacitor not only exhibits 3.75 times of a commercial micro-supercapacitor and 8785 times of an aluminum electrolytic capacitor in volumetric energy density under 1000 mV s(-1) scan rate, but can also be tailored into diversified shapes, rolled up, and plugged into tiny interstitial spaces inside a device. Such ultrathin (18 mu m) micro-supercapacitor component with high volumetric energy density (0.98 mWh cm(-3) in LiCl-PVA gel, 5.7 mWh cm(-3) in ionic liquid), can be integrated into an electronic device system and shows a series of superior performance characteristics over current commercial benchmarks, which may find vast applications. (C) 2016 Published by Elsevier Ltd.
机译:随着可穿戴/柔性电子设备的发展,一个巨大的挑战是将原始尺寸较大的电子组件集成到柔性,薄型和任意布局中。作为电子产品中不可缺少的组件,商用微型超级电容器在其笨拙的长方体几何形状和有限的容量方面是不利的,并且对未来的应用前景不佳。相比之下,薄膜状的微型超级电容器在小型化的系统集成方面具有优势,因为它们可以折叠以适合有限的空间,同时保持高水平的体积能量密度。在这里,我们对最先进的,封装良好的薄膜微型超级电容器向商用微型超级电容器和铝电解电容器进行了基准研究。在1000 mV s(-1)扫描速率下,其体积能量密度微平面超级电容器不仅具有商用微型电容器的3.75倍和铝电解电容器的8785倍,而且还可以定制成多种形状,卷起来。 ,并插入设备内部的细小间隙。这种具有超高体积能量密度(在LiCl-PVA凝胶中为0.98 mWh cm(-3),在离子液体中为5.7 mWh cm(-3))的超薄(18μm)微型超级电容器组件可以集成到电子设备系统中并显示出一系列优于当前商业基准的卓越性能特征,这些商业特征可能会得到广泛的应用。 (C)2016由Elsevier Ltd.出版

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