Aqueous supercapacitors are powerful energy sources, but they are limited by energy density that is much lower than lithium-ion batteries. Since raising the voltage beyond the thermodynamic potential for water splitting (1.23âV) can boost the energy density, there has been much effort on water-stabilizing salvation additives such as Li(2)SO(4) that can provide an aqueous electrolyte capable of withstanding ~1.8âV. Guided by the first-principles calculations that reveal water can promote hydrogen and oxygen evolution reactions, here, we pursue a new strategy of covering the electrode with a dense electroplated polymerized polyacrylic acid, which is an electron insulator but a proton conductor and proton reservoir. The combined effect of salvation and coating expands the electrochemical window throughout pHâ3 to pHâ10 to 2.4âV for both fast and slow proton-mediated redox reactions. This allows activated carbon to quadruple the energy density, a kilogram of nitrogen-doped graphene to provide 127 Watt-hour, and both to have improved endurance because of suppression of water-mediated corrosion. Therefore, aqueous supercapacitors can now achieve energy densities quite comparable to that of a lithium-ion battery, but at 100 times the charging/discharging speed and cycle durability.
Electrodes with Electrodeposited Water-excluding Polymer Coating Enable High-Voltage Aqueous Supercapacitors.
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作者:Dong Wujie, Lin Tianquan, Huang Jian, Wang Yuan, Zhang Zhichao, Wang Xin, Yuan Xiaotao, Lin Jie, Chen I-Wei, Huang Fuqiang
| 期刊: | Research (Wash D C) | 影响因子: | 0.000 |
| 时间: | 2020 | 起止号: | 2020 Oct 9; 2020:4178179 |
| doi: | 10.34133/2020/4178179 | ||
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