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Fast-cure ionogel electrolytes with improved ion transport kinetics at room temperature

机译:快速固化的离子凝胶电解质,在室温下具有改善的离子传输动力学

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Fast-cure 1-ethyl-3-methylimidazolium trifluoromethanesulfonate-based ionogels have been realised for the first time. The influence of curing temperature on the structure of ionogels and their performance as the electrolyte for electric double-layer capacitors (EDLCs) has been investigated. Hybrid ionogels were synthesised via a non-hydrolytic sol-gel route and were fully gelled post heat-treating at 125, 150, 175 and 200 degrees C for 60 mm with minimal shrinkage. Charge-transfer resistance (a rate-limiting parameter in cell kinetics during charge/discharge cycles) was reduced by similar to 80% by increasing the heat-treatment temperature; this was partially attributed to the interlocking effect facilitated by high curing temperature. We report a maximum areal capacitance of 95 mF cm(-2). Due to similar to 40% increase In the penetrability coefficient of the ionic liquid, the electrode 'full' wetting time dropped from 48 to 5 h when the curing temperature was increased above 150 degrees C. These results were supported by SEM and Raman spectroscopy to characterise the effect of high temperature heat-treatment on the electrode-ionogel interface and the degree of electrode wetting by the ionic liquid. The fast-cure fabrication process for ionogels removes one of the major hurdles in their industrial application while the improved room temperature ion transport kinetics expands the potential application of ionic liquid-based electrochemical systems.
机译:首次实现了基于快速固化的1-乙基-3-甲基咪唑三氟甲烷磺酸盐的离子凝胶。研究了固化温度对离子凝胶结构及其作为双电层电容器(EDLC)电解质的性能的影响。杂化离子凝胶通过非水解溶胶-凝胶途径合成,并在125、150、175和200摄氏度热处理60毫米后充分凝胶化,收缩率最小。通过提高热处理温度,电荷转移阻力(充电/放电循环期间电池动力学的限速参数)降低了约80%。这部分归因于较高的固化温度促进了互锁作用。我们报告的最大面电容为95 mF cm(-2)。由于离子液体的渗透系数增加了近40%,当固化温度增加到150摄氏度以上时,电极的“完全”润湿时间从48小时减少到5小时。这些结果得到了SEM和拉曼光谱的支持,表征了高温热处理对电极-离子凝胶界面和离子液体对电极润湿程度的影响。离子凝胶的快速固化制造工艺消除了其工业应用中的主要障碍之一,而改进的室温离子传输动力学则扩展了基于离子液体的电化学系统的潜在应用。

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