Sun Zongqiang, Lin Xiaodong, Wang Chutao, Hu Ajuan, Hou Qing, Tan Yanyan, Dou Wenjie, Yuan Ruming, Zheng Mingsen, Dong Quanfeng
Department of Chemistry, College of Chemistry and Chemical Engineering, Xiamen University, Xiamen, Fujian, 361005, China.
Innovation Laboratory for Sciences and Technologies of Energy Materials of Fujian Province (IKKEM), Xiamen, 361005, China.
Angew Chem Int Ed Engl. 2022 Sep 5;61(36):e202207570. doi: 10.1002/anie.202207570. Epub 2022 Jul 26.
Glymes are the most widely used electrolyte solvents in lithium-oxygen batteries (LOBs) due to their relatively high stability. However, their associated LOBs have long been plagued by large charge overpotential, which is closely related to the sluggish two-electron Li O oxidation mechanism. Here, we report a new electrolyte solvent-1,1,3,3-tetramethylurea (TMU) for LOBs with high performance and an alternative mechanism, where a kinetically favorable one-electron Li O oxidation pathway can happen in the urea electrolyte system, thus leading to a much lower charge overpotential (≈0.51 V) compared to the tetraglyme-based LOBs (≈1.27 V). Besides, TMU also exhibits good stability since it does not contain any α-hydrogen atoms that are vulnerable to be attacked by superoxide species, thus suppressing the hydrogen abstraction side reactions. Consequently, the TMU-based LOBs can stably work for more than 135 cycles, which is four times that of the tetraglyme-based LOBs (≈28 cycles).
由于其相对较高的稳定性,乙二醇二甲醚是锂氧电池(LOBs)中使用最广泛的电解质溶剂。然而,与之相关的锂氧电池长期以来一直受到大电荷过电位的困扰,这与缓慢的双电子Li-O氧化机制密切相关。在此,我们报道了一种用于高性能锂氧电池的新型电解质溶剂——1,1,3,3-四甲基脲(TMU)以及一种替代机制,在该尿素电解质体系中可以发生动力学上有利的单电子Li-O氧化途径,因此与基于四甘醇二甲醚的锂氧电池(≈1.27 V)相比,电荷过电位要低得多(≈0.51 V)。此外,TMU还表现出良好的稳定性,因为它不包含任何易受超氧物种攻击的α-氢原子,从而抑制了氢提取副反应。因此,基于TMU的锂氧电池可以稳定工作超过135个循环,是基于四甘醇二甲醚的锂氧电池(≈28个循环)的四倍。