Effect of electrolyte and carbon material on the electrochemical performance of high-voltage aqueous symmetric supercapacitors

超级电容器 材料科学 电解质 储能 石墨烯 杂原子 化学工程 水溶液 电化学 氧化物 无机化学 电极 纳米技术 化学 有机化学 冶金 戒指(化学) 功率(物理) 物理化学 工程类 物理 量子力学
作者
Katarzyna Gajewska,Adam Moyseowicz,Daria Minta,Grażyna Gryglewicz
出处
期刊:Journal of Materials Science [Springer Science+Business Media]
卷期号:58 (4): 1721-1738 被引量:51
标识
DOI:10.1007/s10853-023-08148-5
摘要

Abstract The energy storage capability of the aqueous supercapacitors is mainly attributed to the relatively low operating voltage of the device, as the thermodynamic decomposition voltage of water is 1.23 V. Therefore, the extension of the working voltage of the aqueous capacitor beyond the electrolyte decomposition limit is an important subject for the development of environmentally friendly energy storage devices. In this study, a commercial activated carbon (AC) and synthesized phosphorus-doped reduced graphene oxide (P-rGO) were used to gain insight into the influence of both textural properties and the surface chemistry on the electrochemical performance of high-voltage aqueous supercapacitors. Materials on the opposite end of the spectrum (highly porous, undoped AC and heteroatom-rich phosphorus-doped reduced graphene oxide with low porosity) were compared in a symmetric cell, operating in a wide voltage window of 2.0 V in 2 M NaClO 4 electrolyte. Additionally, AC-based cell was tested in 1 M Na 2 SO 4 solution to assess the differences in its performance in different sodium-based electrolytes. The obtained results demonstrate that both a porous structure and high contribution of heteroatoms, which improve the hydrophilicity of the electrode, are required to achieve high specific energy density values. However, with increasing current and higher power densities, a developed porous structure is required to maintain good energy storage characteristics. Achieving high operating voltage in the aqueous symmetric full-carbon supercapacitors is a promising energy storage solution. The assembled devices show a good specific energy density of up to 13 Wh kg −1 at a power density of 30 W kg −1 . Graphical abstract

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