Pacific Northwest National Laboratory, 902 Battelle Boulevard, Richland, WA 99354, USA.
Science. 2021 May 21;372(6544):836-840. doi: 10.1126/science.abd9795.
Aqueous redox flow batteries with organic active materials offer an environmentally benign, tunable, and safe route to large-scale energy storage. Development has been limited to a small palette of organics that are aqueous soluble and tend to display the necessary redox reversibility within the water stability window. We show how molecular engineering of fluorenone enables the alcohol electro-oxidation needed for reversible ketone hydrogenation and dehydrogenation at room temperature without the use of a catalyst. Flow batteries based on these fluorenone derivative anolytes operate efficiently and exhibit stable long-term cycling at ambient and mildly increased temperatures in a nondemanding environment. These results expand the palette to include reversible ketone to alcohol conversion but also suggest the potential for identifying other atypical organic redox couple candidates.
水相氧化还原流电池采用有机活性材料,为大规模储能提供了一种环境友好、可调节和安全的途径。发展受到限制,仅限于一小部分在水中具有良好溶解性且在水稳定窗口内具有必要氧化还原可逆性的有机化合物。我们展示了如何通过分子工程设计芴酮,使其能够在室温下进行醇电氧化,从而实现酮的可逆加氢和脱氢,而无需使用催化剂。基于这些芴酮衍生物的氧化还原流电池在环境要求不高的情况下,在环境温度和适度升高的温度下高效运行,并具有稳定的长期循环性能。这些结果不仅扩展了包括可逆酮到醇的转化的调色板,还表明有可能确定其他非典型有机氧化还原对候选物。