Casey M. Davis, Scott E. Waters, Brian H. Robb, Jonathan R. Thurston, David Reber, Michael P. Marshak
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引用次数: 0
摘要
含有多种氧化还原偶的电解质有望提高液流电池的能量密度。本文对结构异构体的两种螯合铬络合物进行了表征,并将其组合在一起生成了含有高达 2 M 活性物质的电解质,相当于 53.6 Ah L-1。这种混合异构体方法使活性物质的含量大大高于单个材料,在 100 mA cm-2 时可产生库仑效率≥99.6% 的高能量密度电池,在 50% 电量状态下可产生 1.65 V 的开路电压。不过,这种高浓度也有一个注意事项:在给定浓度下,等摩尔混合电解质的电压效率比使用单个异构体低,而库仑效率保持不变。我们的工作表明,利用结构异构是提高容量的有效方法,但在混合体系中必须谨慎选择活性材料,因为工作电位的差异会对能量效率产生负面影响。
Disparate Redox Potentials in Mixed Isomer Electrolytes Reduce Voltage Efficiency of Energy Dense Flow Batteries
Electrolytes containing multiple redox couples are promising for improving the energy density of flow batteries. Here, two chelated chromium complexes that are structural isomers are characterized and combined to generate electrolytes containing up to 2 M of active species, corresponding to 53.6 Ah L−1. The mixed isomer approach enables a significantly higher active material content than the individual materials would allow, affording energy dense cells with Coulombic efficiencies of ≥99.6% at 100 mA cm−2 and an open circuit voltage of 1.65 V at 50% state-of-charge. This high concentration, however, comes with a caveat; at a given concentration, an equimolar mixed electrolyte leads to lower voltage efficiency compared to using the individual isomers, while Coulombic efficiency remains constant. Our work demonstrates that exploiting structural isomerism is an efficient approach to improve capacity, but active materials must be selected carefully in mixed systems as differences in operating potentials negatively affect energy efficiency.