钠
材料科学
四苯硼酸钠
氧化物
工作(物理)
碳纤维
纳米技术
阴极
电解质
离子
氧化钠
能量密度
化学工程
范围(计算机科学)
阳极
储能
氧化锰
能量(信号处理)
金属
工艺工程
作者
Jiahua Zhao,Chunyan Zhu,Gang Wu,Yu‐An Li,Jing Wu,Ziheng Zhang,Yong Lu,Youxuan Ni,Zhe Hu,Yue Gao,Kai Zhang
摘要
ABSTRACT Compensating for the substantial sodium ion deficit inherent in P2‐type layered sodium metal oxide cathodes represents a promising strategy for advancing high‐performance sodium‐ion batteries. However, current approaches still fail to reconcile the trade‐off between pre‐sodiation dosage and energy density. Herein, we introduce a soluble sodium compensator, sodium tetraphenylborate (NaBPh 4 ), rationally discovered through a combined unsupervised and supervised machine‐learning screening of boron‑centered anions, which can release sufficient sodium ions to replenish the entire sodium deficit of P2‐type oxides. In P2‐Na 0.67 Ni 0.08 Ti 0.12 Mn 0.8 O 2 || hard carbon full cells, this compensator endows the full cell with an ultra‐long cycle life exceeding 3700 cycles, while a 5 Ah pouch cell achieves a remarkable energy density of 184 Wh kg −1 at 0.1C. This work establishes a versatile strategy for addressing high sodium‐deficiency systems, thereby expanding the research scope and practical application potential of sodium‐ion full cells.
科研通智能强力驱动
Strongly Powered by AbleSci AI