Liu Tingting, Lei Chengjun, Wang Huijian, Li Jinye, Jiang Pengjie, He Xin, Liang Xiao
State Key Laboratory of Chem/Bio-Sensing and Chemometrics, Joint International Research Laboratory of Energy Electrochemistry, College of Chemistry and Chemical Engineering, Hunan University, Changsha, 410082, China.
Adv Mater. 2024 Aug;36(32):e2405473. doi: 10.1002/adma.202405473. Epub 2024 Jun 10.
In the pursuit of high-performance energy storage systems, four-electron zinc-iodine aqueous batteries (4eZIBs) with successive I/I/I redox couples are appealing for their potential to deliver high energy density and resource abundance. However, susceptibility of positive valence I to hydrolysis and instability of Zn plating/stripping in conventional aqueous electrolyte pose significant challenges. In response, polyethylene glycol (PEG 200) is introduced as co-solvent in 2 m ZnCl aqueous solution to design a wide temperature electrolyte. Through a comprehensive investigation combining spectroscopic characterizations and theoretical simulations, it is elucidated that PEG disrupts the intrinsic strong H-bonds of water by global weak PEG-HO interaction, which strengthens the O─H covalent bond of water and intensifies the coordination with Zn. This synergistic effect substantially reduces water activity to restrain the I hydrolysis, facilitating I/I/I redox kinetics, mitigating I formation and smoothening Zn deposition. The 4eZIBs in the optimized hybrid electrolyte not only deliver superior cyclability with a low fading rate of 0.0009% per cycle over 20 000 cycles and a close-to-unit coulombic efficiency but also exhibit stable performance in a wide temperature range from 40 °C to -40 °C. This study offers valuable insights into the rational design of electrolytes for 4eZIBs.
在追求高性能储能系统的过程中,具有连续I/I/I氧化还原对的四电子锌碘水系电池(4eZIBs)因其具有提供高能量密度和资源丰富的潜力而备受关注。然而,正价态I易水解以及传统水电解质中锌电镀/剥离的不稳定性带来了重大挑战。作为回应,聚乙二醇(PEG 200)被引入到2 m ZnCl水溶液中作为共溶剂,以设计一种宽温度范围的电解质。通过结合光谱表征和理论模拟的全面研究,阐明了PEG通过全局弱PEG-HO相互作用破坏了水固有的强氢键,这增强了水的O─H共价键并强化了与Zn的配位。这种协同效应显著降低了水的活性,从而抑制了I的水解,促进了I/I/I氧化还原动力学,减少了I的生成并使锌沉积更加平滑。优化后的混合电解质中的4eZIBs不仅具有卓越的循环稳定性,在20000次循环中每循环的低衰减率为0.0009%且库仑效率接近1,而且在40℃至-40℃的宽温度范围内都表现出稳定的性能。这项研究为4eZIBs电解质的合理设计提供了有价值的见解。