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聚二乙炔-苝二酰亚胺超级电容器

Polydiacetylene-Perylenediimide Supercapacitors.

作者信息

De Adhikari Amrita, Morag Ahiud, Seo Joonsik, Kim Jong-Man, Jelinek Raz

机构信息

Department of Chemistry, Ben Gurion University of the Negev, Beer Sheva, 8410501, Israel.

Department of Chemical Engineering, Hanyang University, Seoul, 04763, Korea.

出版信息

ChemSusChem. 2020 Jun 19;13(12):3230-3236. doi: 10.1002/cssc.202000440. Epub 2020 May 7.

Abstract

Organic supercapacitors have attracted interest as promising "green" and efficient components in energy storage applications. A polydiacetylene derivative coupled with reduced graphene oxide was employed, for the first time, to generate an organic pseudocapacitance-based supercapacitor that exhibited excellent electrochemical properties. Specifically, diacetylene monomers were functionalized with perylenediimide (PDI), spontaneously forming elongated microfibers. Following polymerization through UV irradiation, the PDI-polydiacetylene microfibers were interspersed with reduced graphene oxide (rGO), generating a porous electrode material exhibiting a high surface area and facilitating efficient ion diffusion, both essential preconditions for supercapacitor applications. We show that PDI-polydiacetylene has an important role in enhancing the electrochemical properties as a supercapacitor electrode. Besides stabilizing the microporous electrode organization, the delocalized π electrons in both the PDI residues and conjugated network of the polydiacetylene contributed to a significantly higher capacitance (specific capacitance >600 F g at 1 A g current density), longer discharge time, and high power density. The PDI-polydiacetylene-rGO electrodes were employed in a functional supercapacitor device.

摘要

有机超级电容器作为储能应用中具有前景的“绿色”高效组件而备受关注。首次采用一种与还原氧化石墨烯耦合的聚二乙炔衍生物来制备一种基于有机赝电容的超级电容器,该超级电容器表现出优异的电化学性能。具体而言,二乙炔单体用苝二酰亚胺(PDI)进行功能化,自发形成细长的微纤维。通过紫外线照射进行聚合后,PDI-聚二乙炔微纤维与还原氧化石墨烯(rGO)相互穿插,生成一种具有高表面积且有利于高效离子扩散的多孔电极材料,这两者都是超级电容器应用的基本前提条件。我们表明,PDI-聚二乙炔作为超级电容器电极在增强电化学性能方面具有重要作用。除了稳定微孔电极结构外,PDI残基和聚二乙炔共轭网络中的离域π电子有助于显著提高电容(在1 A g电流密度下比电容>600 F g)、延长放电时间以及提高功率密度。PDI-聚二乙炔-rGO电极被应用于功能性超级电容器装置中。

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