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基于有机水凝胶电解质及其复合电极的宽温域柔性超级电容器。

Wide-Temperature Flexible Supercapacitor from an Organohydrogel Electrolyte and Its Combined Electrode.

机构信息

Key Laboratory of Colloid and Interface Chemistry, Ministry of Education), Shandong University, Jinan, 250100, P. R. China.

National Engineering Laboratory for, Reducing Emissions from Coal Combustion, Shandong University, Jinan, 250061, P. R. China.

出版信息

Chemistry. 2023 May 2;29(25):e202300123. doi: 10.1002/chem.202300123. Epub 2023 Mar 27.

Abstract

Hydrogel-based flexible supercapacitors possess the merits of highly ionic conductivity and superior power density, but the existence of water limits their application in extreme temperature scenarios. Noticeably, it is a challenge for people to design more extremely temperature adaptable systems for flexible supercapacitors based on hydrogels with a wide temperature region. In this work, a wide-temperature flexible supercapacitor that can operate at -20-80 °C was fabricated by an organohydrogel electrolyte and its combined electrode (also known as an electrode/electrolyte composite). Upon introducing highly hydratable LiCl into an ethylene glycol (EG)/H O binary solvent, owing to the ionic hydration effect of LiCl and the hydrogen bond interaction between EG and H O molecules, the organohydrogel electrolyte exhibits satisfactory resistance to freezing (freezing point of -113.9 °C), anti-drying capability (78.2 % of weight retention after vacuum drying at 60 °C for 12 h) and excellent ionic conductivity both at room temperature (13.9 mS cm ) and low temperature (6.5 mS cm after 31 days at -20 °C). By using organohydrogel electrolyte as binder, the prepared electrode/electrolyte composite effectively reduces interface impedance and enhances specific capacitance due to the uninterrupted ion transport channels and extended interface contact area. The assembled supercapacitor delivers a specific capacitance of 149 F g , a power density of 160 W kg , and an energy density of 13.24 Wh kg at a current density of 0.2 A g . The initial 100 % capacitance can be maintained after 2000 cycles at 1.0 A g . More importantly, the specific capacitances can be well maintained even at -20 and 80 °C. With other advantages such as excellent mechanical property, the supercapacitor is an ideal power source suitable for various working conditions.

摘要

水凝胶基柔性超级电容器具有高离子电导率和高功率密度的优点,但水的存在限制了其在极端温度环境下的应用。值得注意的是,设计具有更宽温度适应范围的基于水凝胶的柔性超级电容器系统仍然是一个挑战,因为需要在很宽的温度范围内工作。在这项工作中,通过使用有机水凝胶电解质及其组合电极(也称为电极/电解质复合材料),制备了一种可在-20-80°C 下工作的宽温区柔性超级电容器。通过向乙二醇(EG)/H2O 二元溶剂中引入高水合的 LiCl,由于 LiCl 的离子水合作用和 EG 与 H2O 分子之间的氢键相互作用,有机水凝胶电解质表现出令人满意的抗冻性能(冰点为-113.9°C)、抗干燥能力(在 60°C 下真空干燥 12 小时后保留 78.2%的重量)和在室温下(13.9 mS cm-1)和低温下(-20°C 下 31 天后为 6.5 mS cm-1)均具有优异的离子电导率。通过使用有机水凝胶电解质作为粘结剂,所制备的电极/电解质复合材料由于具有连续的离子传输通道和扩展的界面接触面积,有效降低了界面阻抗并提高了比电容。组装好的超级电容器在 0.2 A g-1 的电流密度下具有 149 F g-1 的比电容、160 W kg-1 的功率密度和 13.24 Wh kg-1 的能量密度。在 1.0 A g-1 下循环 2000 次后,初始电容可保持 100%。更重要的是,即使在-20 和 80°C 下,比电容也能得到很好的保持。该超级电容器具有优异的机械性能等其他优点,是一种理想的适用于各种工作条件的电源。

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