氧化还原
铕
水溶液
溶剂化
化学
配位几何学
流动电池
配位复合体
电池(电)
材料科学
动能
协调数
无机化学
电化学
溶解度
电极
电催化剂
化学工程
催化作用
化学物理
结晶学
能量最小化
化学稳定性
纳米技术
配体(生物化学)
作者
Sheng Wen,Jianwen Guo,Binze Yang,Tengfei Dai,Pengbo Zhang,Peng Liu,Yongkang Chen,Qingbo Guo,Yuzhu Liu,Zuoxiu Tie,Zhong Jin
摘要
ABSTRACT Neutral aqueous redox flow batteries (ARFBs) are promising for grid‐scale energy storage because of their intrinsic safety, low corrosiveness, and environmental compatibility, yet achieving both high energy density and long‐term stability remains challenging. Herein, we report a coordination‐geometry‐regulated europium macroheterocyclic complex in which a Eu 3+ /Eu 2+ redox centre is efficiently stabilized by a rigid square‐antiprismatic coordinated 1,4,7,10 ‐tetraazacyclododecane‐ N,N′,N′′,N′′′ ‐tetraacetic acid (DOTA) ligand, namely Eu(DOTA). This rigid macrocyclic framework efficiently preserves the structural integrity of the complex during extended redox cycling. Theoretical calculations and spectroscopic characterization reveal that the highly symmetric Eu–O/Eu–N coordination shell homogenizes Eu–ligand interactions, significantly elevating the kinetic barrier for the first water‐coordination event. Thus, Eu(DOTA) resists water‐induced coordination changes and structural rearrangement, while its organized solvation shell is associated with reduced membrane crossover. Consequently, the Eu(DOTA)‐based negolyte exhibits a high aqueous solubility (up to 2.2 M) and a high operating voltage of 1.43 V in neutral Eu‐Fe ARFBs. At 1.0 M, the battery delivers 23.8–24.4 Ah L −1 and sustains 2000 cycles (103 days), with decay rates of 0.0070% and 0.0023% per cycle over the initial 360 and subsequent 1640 cycles, respectively. These results establish a coordination‐environment‐guided strategy for designing high‐voltage, long‐lived neutral ARFBs.
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