阴极
材料科学
电化学
化学计量学
相(物质)
耐久性
异质结
化学工程
电极
格子(音乐)
结构稳定性
结晶学
纳米技术
原位
块(置换群论)
固溶体
单相
化学
自行车
作者
Ao Chen,Zongyu Guan,Yifeng Yuan,Yuansheng Lin,Mingxiang Deng,Yang Gu,Aoci Yang,Ziyan Wu,Siteng Zhou,Meng Li,Kuan Wang,Jiangtao Hu,Shiwen Wu,Tianyi Li,Ming‐Jian Zhang,Biwei Xiao
摘要
ABSTRACT Na 4 Fe 3 (PO 4 ) 2 P 2 O 7 (NFPP) is a NASICON‐type iron‐based polyanionic cathode that is attracting increasing interest for sodium‐ion batteries because of its low cost, robust framework, three‐dimensional Na + transport channels, and high operating voltage. However, its electrochemical performance is severely compromised by the formation of electrochemically inactive maricite NaFePO 4 (m‐NFP) during synthesis. Here, we induced the in situ formation of a Na 3.12 Fe 2.44 (P 2 O 7 ) 2 (N 3.12 F 2.44 PO) phase within NFPP through stoichiometry engineering to construct a heterogeneous composite. This strategy effectively suppresses m‐NFP formation and improves reversible capacity, while retaining the intrinsic cost advantage of NFPP without incorporating additional elements or extra synthetic steps. The optimized NFPP/N 3.12 F 2.44 PO heterostructure exhibits remarkable structural robustness, with the P 2 O 7 ‐rich N 3.12 F 2.44 PO phase acting as a structural buffer to mitigate lattice deformation, enabling an ultralong cycling life of 10,000 cycles at 40C (1C = 129 mA g −1 ) with 83.6% capacity retention. By mapping phase evolution across a controlled Na‐Fe‐P compositional window, we further reveal that Na and Fe contents govern the formation propensity of the N 3.12 F 2.44 PO phase, offering a viable route to heterogeneous NASICON‐type cathodes with exceptional cycling durability for sodium‐ion batteries.
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