Wang Xiaofei, Zhang Yifu, Zheng Jiqi, Jiang Hanmei, Dong Xueying, Liu Xin, Meng Changgong
School of Chemical Engineering, Dalian University of Technology, Dalian 116024, PR China.
School of Chemical Engineering, Dalian University of Technology, Dalian 116024, PR China.
J Colloid Interface Sci. 2020 Aug 15;574:312-323. doi: 10.1016/j.jcis.2020.04.072. Epub 2020 Apr 19.
Exploring electrode materials with excellent electrochemical performance is the key to the development of applications in energy storage and conversion. Herein, three-dimensional (3D) vanadium sulfide/carbon nanotubes/reduced graphene oxide (VS/CNTs/rGO) composite is synthesized by a simple one-step hydrothermal method. VS short nanorods cover the both sides of the rGO sheets, and CNTs distribute at the edge of the composite to form a sandwich-like structure, which effectively prevents the accumulation of rGO. Due to the special 3D hierarchical structure, VS/CNTs/rGO exhibits a large specific surface area and a rich pore structure, and the addition of CNTs and rGO also improves the electrochemical properties of VS. At 1 A·g, VS/CNTs/rGO exhibits a capacitance of 497 F·g (1374.0 C·g) in the voltage range of -1.4 to 1.4 V, which is much higher than those binary materials including CNTs/rGO, VS/CNTs and VS/rGO. The VS/CNTs/rGO symmetric supercapacitor (SSC) device shows a remarkable electrochemical performance in a large potential window up to 2.2 V. The capacitance of VS/CNTs/rGO SSC device can reach 1003.5 mF·cm (2207.6 mC·cm) at 0.5 mA·cm, and it exhibits an energy density of 6.75 Wh·m (72.07 Wh·kg) at a power density of 1.38 W·m (14.69 W·kg). The high capacitance and energy density of the VS/CNTs/rGO composite in the high voltage interval make it as the potential energy storage material.
探索具有优异电化学性能的电极材料是储能和能量转换应用发展的关键。在此,通过简单的一步水热法合成了三维(3D)硫化钒/碳纳米管/还原氧化石墨烯(VS/CNTs/rGO)复合材料。VS短纳米棒覆盖在rGO片的两侧,碳纳米管分布在复合材料的边缘,形成三明治状结构,有效防止了rGO的堆积。由于特殊的3D分级结构,VS/CNTs/rGO具有较大的比表面积和丰富的孔结构,碳纳米管和rGO的加入也改善了VS的电化学性能。在1 A·g时,VS/CNTs/rGO在-1.4至1.4 V的电压范围内表现出497 F·g(1374.0 C·g)的电容,远高于包括CNTs/rGO、VS/CNTs和VS/rGO在内的二元材料。VS/CNTs/rGO对称超级电容器(SSC)器件在高达2.2 V的大电位窗口中表现出卓越的电化学性能。VS/CNTs/rGO SSC器件在0.5 mA·cm时的电容可达1003.5 mF·cm(2207.6 mC·cm),在1.38 W·m(14.69 W·kg)的功率密度下表现出6.75 Wh·m(72.07 Wh·kg)的能量密度。VS/CNTs/rGO复合材料在高电压区间的高电容和能量密度使其成为潜在的储能材料。