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用于高压缩性不对称超级电容器的具有超高电容的钴镍硫纳米颗粒/碳纳米管海绵阴极

CoNi S Nanoparticle/Carbon Nanotube Sponge Cathode with Ultrahigh Capacitance for Highly Compressible Asymmetric Supercapacitor.

作者信息

Cao Xin, He Jin, Li Huan, Kang Liping, He Xuexia, Sun Jie, Jiang Ruibing, Xu Hua, Lei Zhibin, Liu Zong-Huai

机构信息

Key Laboratory of Applied Surface and Colloid Chemistry (Shaanxi Normal University), Ministry of Education, Xi'an, 710062, P. R. China.

Shaanxi Key Laboratory for Advanced Energy Devices, Xi'an, 710119, P. R. China.

出版信息

Small. 2018 Jul;14(27):e1800998. doi: 10.1002/smll.201800998. Epub 2018 May 30.

DOI:10.1002/smll.201800998
PMID:29847710
Abstract

Compared with other flexible energy-storage devices, the design and construction of the compressible energy-storage devices face more difficulty because they must accommodate large strain and shape deformations. In the present work, CoNi S nanoparticles/3D porous carbon nanotube (CNT) sponge cathode with highly compressible property and excellent capacitance is prepared by electrodepositing CoNi S on CNT sponge, in which CoNi S nanoparticles with size among 10-15 nm are uniformly anchored on CNT, causing the cathode to show a high compression property and gives high specific capacitance of 1530 F g . Meanwhile, Fe O /CNT sponge anode with specific capacitance of 460 F g in a prolonged voltage window is also prepared by electrodepositing Fe O nanosheets on CNT sponge. An asymmetric supercapacitor (CoNi S /CNT//Fe O /CNT) is assembled by using CoNi S /CNT sponge as positive electrode and Fe O /CNT sponge as negative electrode in 2 m KOH solution. It exhibits excellent energy density of up to 50 Wh kg at a power density of 847 W kg and excellent cycling stability at high compression. Even at a strain of 85%, about 75% of the initial capacitance is retained after 10 000 consecutive cycles. The CoNi S /CNT//Fe O /CNT device is a promising candidate for flexible energy devices due to its excellent compressibility and high energy density.

摘要

与其他柔性储能装置相比,可压缩储能装置的设计与构建面临更多困难,因为它们必须适应大应变和形状变形。在本工作中,通过在碳纳米管(CNT)海绵上电沉积CoNiS制备了具有高可压缩性和优异电容的CoNiS纳米颗粒/三维多孔碳纳米管(CNT)海绵阴极,其中尺寸在10 - 15nm之间的CoNiS纳米颗粒均匀地锚定在CNT上,使阴极表现出高压缩性能,并具有1530F g的高比电容。同时,通过在CNT海绵上电沉积FeO纳米片,还制备了在延长电压窗口下比电容为460F g的FeO/CNT海绵阳极。在2m KOH溶液中,以CoNiS/CNT海绵为正极、FeO/CNT海绵为负极组装了不对称超级电容器(CoNiS/CNT//FeO/CNT)。它在847W kg的功率密度下表现出高达50Wh kg的优异能量密度,并且在高压缩下具有优异的循环稳定性。即使在85%的应变下,连续10000次循环后仍保留约75%的初始电容。由于其优异的可压缩性和高能量密度,CoNiS/CNT//FeO/CNT装置是柔性能量装置的一个有前途的候选者。

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