氧化还原
电化学
电极
储能
电负性
小分子
电池(电)
共轭体系
分子
材料科学
有机自由基电池
化学工程
化学
组合化学
聚苯胺
纳米技术
铅酸蓄电池
比能量
电化学储能
无机化学
高能
容量损失
工作(物理)
化学稳定性
电化学能量转换
作者
Yehui Zhang,Qi Huang,Pingxuan Liu,Yaokang Lv,Ziyang Song,LiHua GAN,Mingxian Liu
标识
DOI:10.1038/s41467-026-70800-w
摘要
Abstract Iron-ion batteries represent a compelling energy storage solution due to the cost-effectiveness, suitable redox potential, and high capacity of Fe negative electrodes. Polyaniline positive electrodes for iron-ion batteries have demonstrated promising electrochemical redox properties, but face limited redox-accessible groups and unstable −NH− sites. Here we show phosphorus redox activity in a carboxyl small molecule electrode. 4,4′,4″-phosphanetriyltribenzoic acid and 4,4′,4″-nitrilotribenzoic acid are designed via modulating the electron-donating P and tert-N motifs, showing tuned charge distributions and energy levels. With the decrease of the electronegativity and energy barrier (N > P), 4,4′,4″-phosphanetriyltribenzoic acid exhibits stronger Fe 2+ coordination with carboxyl sites, and brings closed CF 3 SO 3 − proximity to P centers. This feature ensures high activity of carboxyl/phosphorus sites with low activation energy (0.24 vs . 0.29 eV for 4,4′,4″-nitrilotribenzoic acid). 4,4′,4″-phosphanetriyltribenzoic acid with P-extended conjugated structure achieves low energy gap (2.28 eV) compared to its individual carboxyl or P-containing counterparts (2.71/3.16 eV), thereby enabling high utilization of carboxyl/P motifs (98.5%) and enhanced redox voltage (0.8 V). A stable 4 e − Fe 2+ /CF 3 SO 3 − storage of 4,4′,4″-phosphanetriyltribenzoic acid positive electrode endows Fe battery with high specific capacity (276 mAh g −1 ) and cycling stability (60,000 cycles). This work highlights the potential of phosphorus-active organic materials toward iron-ion batteries.
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