Zhu Zhengxin, Wang Weiping, Yin Yichen, Meng Yahan, Liu Zaichun, Jiang Taoli, Peng Qia, Sun Jifei, Chen Wei
Department of Applied Chemistry, School of Chemistry and Materials Science, Hefei National Laboratory for Physical Sciences at the Microscale, University of Science and Technology of China, Hefei, Anhui 230026, China.
J Am Chem Soc. 2021 Dec 8;143(48):20302-20308. doi: 10.1021/jacs.1c09529. Epub 2021 Nov 21.
Aqueous proton batteries are regarded as one of the most promising energy technologies for next-generation grid storage due to the distinctive merits of H charge carriers with small ionic radius and light weight. Various materials have been explored for aqueous proton batteries; however, their full batteries show undesirable electrochemical performance with limited rate capability and cycling stability. Here we introduce a novel aqueous proton full battery that shows remarkable rate capability, cycling stability, and ultralow temperature performance, which is driven by a hydrogen gas anode and a Prussian blue analogue cathode in a concentrated phosphoric acid electrolyte. Its operation involves hydrogen evolution/oxidation redox reactions on the anode and H insertion/extraction reactions on the cathode, in parallel with the ideal transfer of only H between these two electrodes. The fabricated aqueous hydrogen gas-proton battery exhibits an unprecedented charge/discharge capability of up to 960 C with a superior power density of 36.5 kW kg, along with an ultralong cycle life of over 0.35 million cycles. Furthermore, this hydrogen gas-proton battery is able to work well at an ultralow temperature of -80 °C with 54% of its room-temperature capacity and under -60 °C with a stable cycle life of 1150 cycles. This work provides new opportunities to construct aqueous proton batteries with high performance in extreme conditions for large-scale energy storage.
由于氢离子半径小、重量轻等独特优点,水系质子电池被视为下一代电网储能最具前景的能源技术之一。人们已经对水系质子电池的各种材料进行了探索;然而,它们的全电池表现出不理想的电化学性能,倍率性能和循环稳定性有限。在此,我们介绍一种新型水系质子全电池,它具有卓越的倍率性能、循环稳定性和超低温性能,由氢气阳极和普鲁士蓝类似物阴极在浓磷酸电解质中驱动。其运行涉及阳极上的析氢/氧化还原反应和阴极上的氢嵌入/脱出反应,同时这两个电极之间仅理想地传输氢。所制备的水系氢气-质子电池展现出高达960 C的前所未有的充放电能力,以及36.5 kW kg的优异功率密度,同时具有超过35万次的超长循环寿命。此外,这种氢气-质子电池能够在-80°C的超低温下以其室温容量的54%良好工作,在-60°C下具有1150次循环的稳定循环寿命。这项工作为在极端条件下构建用于大规模储能的高性能水系质子电池提供了新的机遇。