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用于高能不对称超级电容器的碳纳米管/高负载量二氧化锰/石墨烯接枝碳布电极

CNT/High Mass Loading MnO/Graphene-Grafted Carbon Cloth Electrodes for High-Energy Asymmetric Supercapacitors.

作者信息

Lyu Lulu, Seong Kwang-Dong, Kim Jong Min, Zhang Wang, Jin Xuanzhen, Kim Dae Kyom, Jeon Youngmoo, Kang Jeongmin, Piao Yuanzhe

机构信息

Graduate School of Convergence Science and Technology, Seoul National University, Seoul, 151-742, Republic of Korea.

School of Chemistry and Chemical Engineering, Yangzhou University, Yangzhou, 225002, Jiangsu, People's Republic of China.

出版信息

Nanomicro Lett. 2019 Oct 17;11(1):88. doi: 10.1007/s40820-019-0316-7.

Abstract

Flexible supercapacitor electrodes with high mass loading are crucial for obtaining favorable electrochemical performance but still challenging due to sluggish electron and ion transport. Herein, rationally designed CNT/MnO/graphene-grafted carbon cloth electrodes are prepared by a "graft-deposit-coat" strategy. Due to the large surface area and good conductivity, graphene grafted on carbon cloth offers additional surface areas for the uniform deposition of MnO (9.1 mg cm) and facilitates charge transfer. Meanwhile, the nanostructured MnO provides abundant electroactive sites and short ion transport distance, and CNT coated on MnO acts as interconnected conductive "highways" to accelerate the electron transport, significantly improving redox reaction kinetics. Benefiting from high mass loading of electroactive materials, favorable conductivity, and a porous structure, the electrode achieves large areal capacitances without compromising rate capability. The assembled asymmetric supercapacitor demonstrates a wide working voltage (2.2 V) and high energy density of 10.18 mWh cm.

摘要

具有高质量负载的柔性超级电容器电极对于获得良好的电化学性能至关重要,但由于电子和离子传输缓慢,仍然具有挑战性。在此,通过“接枝-沉积-涂层”策略制备了合理设计的碳纳米管/二氧化锰/石墨烯接枝碳布电极。由于接枝在碳布上的石墨烯具有大表面积和良好的导电性,为二氧化锰(9.1毫克/平方厘米)的均匀沉积提供了额外的表面积,并促进了电荷转移。同时,纳米结构的二氧化锰提供了丰富的电活性位点和较短的离子传输距离,涂覆在二氧化锰上的碳纳米管充当相互连接的导电“高速公路”以加速电子传输,显著改善了氧化还原反应动力学。受益于高负载的电活性材料、良好的导电性和多孔结构,该电极在不影响倍率性能的情况下实现了大面积电容。组装的不对称超级电容器展示了2.2伏的宽工作电压和10.18毫瓦时/平方厘米的高能量密度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/daf2/7770775/7da097c10b77/40820_2019_316_Sch1_HTML.jpg

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