Biomass derived Nitrogen, Sulphur, and Phosphorus self-doped micro-meso porous carbon for high-energy symmetric supercapacitor – With a detailed study of the effect of different current collectors

超级电容器 杂原子 材料科学 碳纤维 石墨 电容 化学工程 氮气 比表面积 储能 润湿 纳米技术 冶金 化学 复合材料 电极 有机化学 催化作用 功率(物理) 物理化学 工程类 物理 复合数 量子力学 戒指(化学)
作者
Om Priya Nanda,Sushmee Badhulika
出处
期刊:Journal of energy storage [Elsevier]
卷期号:56: 106042-106042 被引量:51
标识
DOI:10.1016/j.est.2022.106042
摘要

A cost-effective and high-performance supercapacitor with large specific energy is still a major challenge in the field of energy research. Here, we report a green and inexpensive synthesis of Nitrogen, Sulphur, and Phosphorus self-doped activated carbon from Euphorbia milii plant waste via a two-step KOH activation process for supercapacitor applications. The optimized EMAC (at 700 °C activation) exhibits distinctive stacking of carbon nanosheets with micro-meso pores-like morphology and displays a 2349 m 2 /g surface area obtained via FESEM and BET analysis respectively. So the electrochemical behavior of EMAC-700 with different current collectors (Stainless Steel, Graphite Paper, and Nickel Foam) in a half cell with 6 M KOH is optimized and Nickel foam showed the highest 474.3 F/g specific capacitance at 1 A/g. Furthermore, symmetric cell delivered an excellent specific capacitance of 290.3 F/g at 0.5 A/g with high energy density of 39.75 Wh/kg at 496.5 W/kg. On top of this, the cell also showed 90.23 % capacitance retention even after 20k long charging and discharging cycles at 20 A/g. This remarkable outcome of EMAC-700 could be because of parallel stacking of graphitic layers and the existence of heteroatoms namely nitrogen, sulphur, and phosphorus which increase the surface wettability and indorses defects in the porous carbon to increase the conductivity and capacitive effect. These results demonstrate that self-heteroatom-doped EMAC has an exceptional ability for sustainable and regenerative energy storage devices. • Nitrogen, Sulphur, and Phosphorus heteroatom self-doped porous carbon obtained from Euphorbia milii plant waste • Current collector optimization showed high electrocatalytic activity of Nickel foam. • Symmetric cell delivered a high energy density of 39.75 Wh/kg at power density of 496.5 W/kg.
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