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基于再生丝蛋白的杂交薄膜电极,具有大面积比电容、高柔韧性和轻质,可实现高性能可穿戴储能。

Regenerated silk protein based hybrid film electrode with large area specific capacitance, high flexibility and light weight towards high-performance wearable energy storage.

机构信息

Jiangsu Key Laboratory of Advanced Catalytic Materials and Technology, Advanced Catalysis and Green Manufacturing Collaborative Innovation Center, School of Petrochemical Engineering, Changzhou University, Changzhou 213164, PR China.

Jiangsu Key Laboratory of Advanced Catalytic Materials and Technology, Advanced Catalysis and Green Manufacturing Collaborative Innovation Center, School of Petrochemical Engineering, Changzhou University, Changzhou 213164, PR China.

出版信息

J Colloid Interface Sci. 2023 Dec 15;652(Pt B):1793-1802. doi: 10.1016/j.jcis.2023.09.011. Epub 2023 Sep 3.

Abstract

Planar wearable supercapacitors (PWSCs) have sparked intense interest owing to their hopeful application in smart electronics. However, current PWSCs suffered from poor electrochemical property, weak flexibility and/or large weight. To relieve these defects, in this study, we fabricated a high-performance PWSC using silk protein derived film electrodes (PPy/RSF/MWCNTs-2; RSF, PPy and MWCNTs represent regenerated silk film, polypyrrole and multi-walled carbon nanotubes, respectively, while 2 is the mass ratio of silk to MWCNTs), which were developed by 'dissolving-mixing-evaporating' and in situ polymerization. In three-electrode, PPy/RSF/MWCNTs-2 showed a superb area specific capacitance of 8704.7 mF cm at 5 mA cm, which surpassed numerous reported PWSC electrodes, and had a decent durability with a capacitance retention of 90.7 % after 5000 cycles. The PPy/RSF/MWCNTs-2 derived PWSC showed a largest energy density of 281.3 μWh cm at 1660.1 μW cm, and a power density as high as 13636.4 μW cm at 125.6 μWh cm. Furthermore, impressive capacitive-mechanical stability with a capacitance retention of 92 % under bending angles from 0 to 150 was depicted. Thanks to the rational and affordable preparation, our study for the first time prepared RSF electrode that had great capacitive property, high mechanical flexibility and light weight, simultaneously. The encouraging results can not only open up a new path to manufacture high-performance flexible electrodes, but may also help to realize the high-value-added utilization of silk.

摘要

平面可穿戴超级电容器 (PWSCs) 由于在智能电子产品中的应用前景而引起了强烈的兴趣。然而,目前的 PWSCs 存在电化学性能差、柔性差和/或重量大等问题。为了缓解这些缺陷,本研究使用丝蛋白衍生薄膜电极 (PPy/RSF/MWCNTs-2;RSF、PPy 和 MWCNTs 分别代表再生丝膜、聚吡咯和多壁碳纳米管,而 2 是丝与 MWCNTs 的质量比) 制造了一种高性能的 PWSC,该电极是通过“溶解-混合-蒸发”和原位聚合制备的。在三电极体系中,PPy/RSF/MWCNTs-2 在 5 mA cm 时表现出 8704.7 mF cm 的出色比面积电容,超过了许多报道的 PWSC 电极,并且具有良好的耐久性,经过 5000 次循环后电容保持率为 90.7%。由 PPy/RSF/MWCNTs-2 衍生的 PWSC 在 1660.1 μW cm 时具有最大能量密度 281.3 μWh cm,在 125.6 μWh cm 时具有高达 13636.4 μW cm 的功率密度。此外,在 0 到 150 的弯曲角度下,电容保持率为 92%,表现出令人印象深刻的电容-机械稳定性。由于合理且经济的制备方法,我们的研究首次制备了具有优异电容性能、高机械柔性和轻重量的 RSF 电极。令人鼓舞的结果不仅为制造高性能柔性电极开辟了新途径,而且可能有助于实现丝绸的高附加值利用。

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