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Synthesis of P-Doped and NiCo-Hybridized Graphene-Based Fibers for Flexible Asymmetrical Solid-State Micro-Energy Storage Device

机译:用于柔性不对称固态微能存储装置的基于P掺杂和Nico杂交的石墨烯的纤维的合成

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摘要

Fiber supercapacitors (FSCs) are promising energy storage devices in portable and wearable smart electronics. Currently, a major challenge for FSCs is simultaneously achieving high volumetric energy and power densities. Herein, the microscale fiber electrode is designed by using carbon fibers as substrates and capillary channels as microreactors to space-confined hydrothermal assembling. As P-doped graphene oxide/carbon fiber (PGO/CF) and NiCo_2O_4-based graphene oxide/carbon fiber (NCGO/CF) electrodes are successfully prepared, their unique hybrid structures exhibit a satisfactory electrochemical performance. An all-solid-state PGO/CF//NCGO/CF flexible asymmetric fiber supercapacitor (AFSC) based on the PGO/CF as the negative electrode, NCGO/CF hybrid electrode as the positive electrode, and poly(vinyl alcohol)/ potassium hydroxide as the electrolyte is successfully assembled. The AFSC device delivers a higher volumetric energy density of 36.77 mW h cm~(-3) at a power density of 142.5 mW cm~(-3). In addition, a double reference electrode system is adopted to analyze and reduce the IR drop, as well as effectively matching negative and positive electrodes, which is conducive for the optimization and improvement of energy density. For the AFSC device, its better flexibility and electrochemical properties create a promising potential for high-performance micro-supercapacitors. Furthermore, the introduction of the double reference electrode system provides an interesting method for the study on the electrochemical performances of two-electrode systems.
机译:纤维超级电容器(FSCS)是便携式和可穿戴智能电子设备的能量存储设备。目前,家庭服务中心的一个主要挑战是同时实现高体积能量和功率密度。这里,微尺度纤维电极通过使用碳纤维作为基板和毛细管通道设计为微雾反应器到空间限制水热组装。作为P掺杂的石墨烯氧化物/碳纤维(PGO / CF)和基于NiCO_2O_4的石墨烯氧化物/碳纤维(NCGO / CF)电极被成功制备,其独特的混合结构表现出令人满意的电化学性能。基于PGO / CF作为负电极,NCGO / CF混合电极作为正极,NCGO / CF杂化电极,以及聚(乙烯醇)/钾/ CF柔性不对称纤维超级电容器(AFSC)。作为电解质的氢氧化物成功组装。 AFSC器件以142.5mW cm〜(-3)的功率密度提供36.77mW H cm〜(-3)的较高的体积能密度。另外,采用双参考电极系统来分析和减少IR下降,以及有效地匹配负极和正电极,这有利于能量密度的优化和提高。对于AFSC器件,其更好的灵活性和电化学性质为高性能微型超级电容器创造了有希望的潜力。此外,引入双参考电极系统提供了一种有趣的方法,用于研究双电极系统的电化学性能。

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