设计纳米异构掺杂镍硫化锡/氧化锡作为超级电池的无粘结剂电极材料。

IF 4.3 2区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Davinder Singh, M. Pershaanaa, N. K. Farhana, Shahid Bashir, K. Ramesh, S. Ramesh
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引用次数: 0

摘要

新一代电化学储能设备(EESD),如超级电池,将电池的理想能量密度和超级电容器的最佳功率密度合二为一,因此受到了广泛的研究。电极制备方法等众多参数都会影响超级电容器的性能。在这项研究中,掺杂镍的硫化锡/氧化锡(SnS@Ni/SnO2)异质结构被直接生长在镍泡沫上,并经过不同的煅烧温度,通过 X 射线衍射(XRD)、场发射扫描电子显微镜(FESEM)和电化学测试来研究它们对形成、性能和电化学性能的影响。优化后的 SnS@Ni/SnO2 电极的最大比容量为 319 C g- 1,而基于活性炭的电容电极的最大比电容为 381.19 Fg-1。此外,通过加入不同的导电材料,如乙炔黑(AB)、碳纳米管(CNT)和石墨烯(GR),对超级电池的电容电极进行了优化。借助电荷平衡方程将这些优化电极组装在一起,组装后的超级电池能够在 4,000 次充放电循环中实现 36.04 Wh kg- 1 和 12.48 kW kg- 1 的出色最大能量密度和功率密度,容量保持率高达 91%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Designing nano-heterostructured nickel doped tin sulfide/tin oxide as binder free electrode material for supercapattery

New generation of electrochemical energy storage devices (EESD) such as supercapattery is being intensively studied as it merges the ideal energy density of batteries and optimal power density of supercapacitors in a single device. A multitude of parameters such as the method of electrodes preparation can affect the performance of supercapattery. In this research, nickel doped tin sulfide /tin oxide (SnS@Ni/SnO2) heterostructures were grown directly on the Ni foam and subjected to different calcination temperatures to study their effect on formation, properties, and electrochemical performance through X-ray diffraction (XRD), field emission scanning electron microscopy (FESEM), and electrochemical tests. The optimized SnS@Ni/SnO2 electrode achieved a maximum specific capacity of 319 C g− 1 while activated carbon based capacitive electrode exhibited maximum specific capacitance of 381.19 Fg− 1. Besides, capacitive electrodes for the supercapattery were optimized by incorporating different conductive materials such as acetylene black (AB), carbon nanotubes (CNT) and graphene (GR). Assembling these optimized electrodes with the aid of charge balancing equation, the assembled supercapattery was able to achieve outstanding maximum energy density and power density of 36.04 Wh kg− 1 and 12.48 kW kg− 1 with capacity retention of 91% over 4,000 charge/discharge cycles.

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来源期刊
BMC Chemistry
BMC Chemistry Chemistry-General Chemistry
CiteScore
5.30
自引率
2.20%
发文量
92
审稿时长
27 weeks
期刊介绍: BMC Chemistry, formerly known as Chemistry Central Journal, is now part of the BMC series journals family. Chemistry Central Journal has served the chemistry community as a trusted open access resource for more than 10 years – and we are delighted to announce the next step on its journey. In January 2019 the journal has been renamed BMC Chemistry and now strengthens the BMC series footprint in the physical sciences by publishing quality articles and by pushing the boundaries of open chemistry.
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