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Fluorine-Free Ionic Liquid-Based Electrolyte for Supercapacitors Operating at Elevated Temperatures

机译:用于高温操作的超级电容器的无氟离子液体电解质

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We synthesized tetra(n-butyl)phosphonium furoate [P-4444][FuA] ionic liquid (IL) by the reaction of tetra(n-butyl)phosphonium hydroxide and 2-furoic acid using water as a solvent at room temperature. The thermal stability and phase behavior of the IL are investigated through thermogravimetric analysis (TGA) and differential scanning calorimetry (DSC), while the ionic conductivity measurement is carried out using impedance spectroscopy. Hybrid carbon-based material composed of multiwalled carbon nanotubes (MWCNTs) and activated charcoal is fabricated and used as electrodes. The effect of potential scan rate, temperature, and voltage on the electrochemical performance of the capacitor is thoroughly investigated through cyclic voltammetry (CV), galvanostatic charge-discharge (GCD), and electrochemical impedance spectroscopy (EIS). The results showed that the internal resistance and specific capacitance are highly dependent on the temperature and voltage and high specific capacitance of 141.4 F g(-1) (5 mV s(-1)) from CV and 182 F g(-1) (1 A g(-1)) from GCD at 100 degrees C is achieved, indicating excellent electrochemical performance. The capacitor demonstrated 29.0 Wh kg(-1) energy density and 13.3 kW kg(-1) power density at 20 degrees C and 3 V potential, while 177 Wh kg(-1) energy density and 82 kW kg(-1) power density are achieved at a higher temperature (100 degrees C). The FTIR analysis of the capacitor after electrochemical studies confirmed that no changes occurred in the structure of the IL, indicating high electrochemical stability of the IL for supercapacitor applications in an extended temperature (-20 to 100 degrees C) and a wide potential range (3 to 4.6 V).
机译:通过在室温下使用水作为溶剂,通过Tetra(正丁基)氢氧化鏻和2-糠酸的反应合成四(正丁基)膦酸吡酸鏻[p-4444]π离子液体(IL)。通过热重分析(TGA)和差示扫描量热法(DSC)来研究IL的热稳定性和相行为,同时使用阻抗光谱进行离子电导率测量。由多壁碳纳米管(MWCNT)组成的杂合碳基材料和活性炭被制造并用作电极。通过循环伏安法(CV),电镀电荷 - 放电(GCD)和电化学阻抗光谱(EIS)彻底研究电容扫描速率,温度和电压对电容器电化学性能的影响。结果表明,内阻和特定电容高度依赖于来自CV和182 F G(-1)( - 实现从100摄氏度的GCD的1A G(-1)),表明优异的电化学性能。电容器在20摄氏度和3V电位的情况下展示了29.0WH kg(-1)能量密度和13.3 kW kg(-1)功率密度,而177wkg(-1)能量密度和82 kW kg(-1)功率密度在更高温度(100℃)下实现。电化学研究后电容器的FTIR分析证实,IL的结构没有发生变化,表明在延长温度(-20至100摄氏度)和宽电位范围内的超级电容器应用的高电化学稳定性(3到4.6 v)。

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