材料科学
再分配(选举)
化学物理
兴奋剂
八面体
电化学
电荷(物理)
密度泛函理论
电荷密度
阴极
纳米技术
过渡金属
配体(生物化学)
金属
领域(数学)
工作(物理)
凝聚态物理
机制(生物学)
星团(航天器)
电子结构
析氧
工作职能
掺杂剂
电场
氧气
作者
Hanlin Wang,Jiajia An,Wenxi Zhao,Binkai Yu,Ye Li,Juntao Hu,Shikang Jiang,Qinfen Gu,Junwu Zhu,He Zhu,Jing‐Wen Sun,Limin Zhou,Shengjie Peng,Yuping Wu,Hui Xia,Mingzhe Chen
出处
期刊:ACS Nano
[American Chemical Society]
日期:2025-09-26
卷期号:19 (39): 34966-34980
被引量:5
标识
DOI:10.1021/acsnano.5c11413
摘要
Revealing the mechanism of Mn doping in polyanionic NaFePO 4 materials advances our fundamental understanding of electrochemical reactions. Herein, we propose the concept of heterotransition metal ligand field clusters (H-TMLFC) as a framework to investigate the structural evolution of transition metal (TM) ligand fields at the microscopic level. The introduced [MnO 6 ] octahedra exhibit a distinctive half-filled frontier orbital configuration, thereby strengthening σ-bonding interactions and modulating the charge distribution between adjacent [FeO 6 ] units. The redistribution of charge density around the edge-sharing oxygen atoms in [FeO 6 ]–[MnO 6 ] pairs enhances Fe–O covalency and mitigates Fe/Na antisite defects. As a result, H-TMLFC-derived NaFe 0.95 Mn 0.05 PO 4 achieves an exceptional capacity of 148.9 mAh·g –1 (96.7% of the theoretical capacity) and exhibits superior long-term cycling stability. This work introduces a novel approach for designing high-performance sodium-ion batteries through TM doping, offering atomic-scale insights into the optimization of polyanionic cathode materials.
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