Abraham Akhil M, Lonkar Sunil P, Pillai Vishnu V, Alhassan Saeed M
Department of Chemistry, University of Calgary, 2500 University Dr. NW, Calgary, Alberta T2N 1N4, Canada.
Department of Chemical Engineering, Khalifa University, P.O. Box 127788, Abu Dhabi, UAE.
ACS Omega. 2020 May 15;5(20):11721-11729. doi: 10.1021/acsomega.0c01045. eCollection 2020 May 26.
An economical and binder-free electrode was fabricated by impregnation of sub-5 nm MoS nanodots (MoS NDs) onto a three-dimensional (3D) nickel substrate using the facile dip-coating method. The MoS NDs were successfully synthesized by controlled bath sonication of highly crystalline MoS nanosheets. The as-fabricated high-surface area electrode demonstrated promising electrochemical properties. It was observed that the as-synthesized NDs outperformed the layered MoS peers as the electrode for supercapacitors. MoS NDs exhibited an excellent specific capacitance ( ) of 395 F/g at a current load of 1.5 A/g in a three-electrode configuration. In addition, the fabricated symmetric supercapacitor demonstrated a value of 122 F/g at 1 A/g and a cyclic performance of 86% over 1000 cycles with a gravimetric power and energy density of 10,000 W/kg and 22 W h/kg, respectively. Owing to its simple and efficient fabrication and high surface area, such 3D electrodes show high promise for various energy storage devices.
通过简便的浸涂法将亚5纳米的二硫化钼纳米点(MoS NDs)浸渍到三维(3D)镍基底上,制备了一种经济且无粘结剂的电极。通过对高度结晶的二硫化钼纳米片进行可控浴超声处理,成功合成了MoS NDs。所制备的高表面积电极表现出良好的电化学性能。观察到,作为超级电容器电极,合成的纳米点性能优于层状二硫化钼同类材料。在三电极配置中,当电流负载为1.5 A/g时,MoS NDs表现出395 F/g的优异比电容( )。此外,所制备的对称超级电容器在1 A/g时的比电容值为122 F/g,在1000次循环中的循环性能为86%,重量功率密度和能量密度分别为10,000 W/kg和22 W h/kg。由于其简单高效的制备方法和高表面积,这种3D电极在各种储能装置中显示出很高的应用前景。