超级电容器
电容
复合数
电化学
异质结
化学
电极
锡
硫化物
储能
化学工程
硫化铁
纳米技术
材料科学
光电子学
复合材料
硫黄
物理化学
有机化学
物理
工程类
功率(物理)
量子力学
作者
Mohan Reddy Pallavolu,Yedluri Anil Kumar,Mani Govindasamy,Razan A. Alshgari,Mohamed Ouladsmane,Sang Woo Joo
标识
DOI:10.1016/j.jelechem.2021.115695
摘要
The unique properties of the Sn-S system made it a high sensitiveness nanomaterial for prepare higher-performance supercapacitors. The heterostructured SnS2/SnS and N-CNOs were synthesized by simple solvothermal and pyrolysis methods, respectively. To improve the conductivity of the SnS2/SnS composite, N-CNOs were added to the pristine SnS2/SnS. Herein, an ultrasensitive supercapacitor based on SnS2/SnS and N-CNOs was fabricated. Compared to the pristine SnS2/SnS heterostructured composite, SnS2/SnS/N-CNO showed high supercapacitance performance due to the increase in conductivity with the addition of C-based N-CNOs. Regarding that SnS2/SnS/N-CNO has superior electrochemical performances comparable to SnS2/SnS, because of the fast electronic transportations and volume changes in the formations of SnS2/SnS/N-CNO heterostructures. The electrochemical performance of the SnS2/SnS/N-CNO electrode enhanced specific capacitance value of 741.67 F g−1 from SnS2/SnS electrode specific capacitance of 350 F g−1 at a 0.5 A g−1 and it showed excellent cycling stabilities of 95% retention even after 2000 cycles. The obtained results suggest that the SnS2/SnS/N-CNO is efficient to be applicable as a novel electro-active source in supercapacitor devices to render higher performances and stable energy storage applications.
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