Mahoney Emily R, Boudjelel Maxime, Shavel Henry, Krzyaniak Matthew D, Wasielewski Michael R, Malapit Christian A
Department of Chemistry, Northwestern University, Technological Institute, Evanston, Illinois 60208, United States.
Paula M. Trienens Institute of Sustainability and Energy at Northwestern, Evanston, Illinois 60208, United States.
J Am Chem Soc. 2025 Jan 15;147(2):1381-1386. doi: 10.1021/jacs.4c07750. Epub 2025 Jan 7.
Recent advances in redox flow batteries have made them a viable option for grid-scale energy storage, however they exhibit low energy density. One way to boost energy density is by increasing the cell potential using a nonaqueous system. Molecular engineering has proven to be an effective strategy to develop redox-active compounds with extreme potentials but these are usually challenged by resource sustainability of the newly developed redox materials. Here, we investigate the utility of phosphine oxides as anolytes with extremely negative potentials. Specifically, we found that cyclic triphenylphosphine oxide (CPO), has a highly negative potential (-2.4 V vs Fc/Fc). Importantly, CPO is synthesized from triphenylphosphine oxide, a common industrial chemical waste with no commercial value. Structural and electrochemical characterization of the reduced radical anion showed that enhanced stability is due to cyclization or extended pi-conjugation. Importantly, mechanistic investigation into the decomposition of CPO under various solvents and electrochemical conditions allowed us to utilize an acetonitrile/DMF binary solvent system to enable a long-lived anolyte which exhibited no fade over 350 cycles. In summary, this work led to the development of a waste-derived cyclic phosphine oxide that exhibits excellent cycling stability making it an ideal anolyte toward the development of energy-dense RFBs.
氧化还原液流电池的最新进展使其成为电网规模储能的可行选择,然而它们的能量密度较低。提高能量密度的一种方法是使用非水体系提高电池电位。分子工程已被证明是开发具有极端电位的氧化还原活性化合物的有效策略,但这些化合物通常受到新开发的氧化还原材料资源可持续性的挑战。在这里,我们研究了具有极低电位的氧化膦作为阳极电解液的效用。具体而言,我们发现环状三苯基氧化膦(CPO)具有高度负电位(相对于Fc/Fc为-2.4 V)。重要的是,CPO由三苯基氧化膦合成,三苯基氧化膦是一种无商业价值的常见工业化学废料。还原自由基阴离子的结构和电化学表征表明,稳定性增强是由于环化或扩展的π共轭。重要的是,对CPO在各种溶剂和电化学条件下分解的机理研究使我们能够利用乙腈/二甲基甲酰胺二元溶剂体系来制备一种长寿命的阳极电解液,该电解液在350次循环中没有衰减。总之,这项工作导致了一种由废料衍生的环状氧化膦的开发,该氧化膦具有出色的循环稳定性,使其成为开发高能量密度液流电池的理想阳极电解液。