阳极
材料科学
氧化还原
多孔性
扩散
相(物质)
动力学
化学工程
过渡金属
微观结构
超短脉冲
金属
相变
纳米技术
化学物理
结构稳定性
离子
电流密度
电极
化学动力学
扩散阻挡层
纳米颗粒
纳米晶
多孔介质
表面扩散
钙钛矿(结构)
原位
容量损失
作者
Yishun Xie,Yu Ji,Yameng Fan,Guangchang Yang,Feiyan Lai,X. Zhang,Yu Wang,J. X. Wang,Weihan Li,Changhong Wang,Zhenxiang Cheng,H. S. Wang,Xin Fan,Jian Peng
摘要
ABSTRACT Metal chalcogenides represent promising anodes for sodium‐ion batteries due to their high theoretical capacities and low material costs. However, their practical applications are hampered by inherently sluggish ion diffusion kinetics and severe volume expansion associated with their conventional conversion reaction mechanism. Here, we design a micro‐nano ZnS/ZnSe heterostructured anode through in situ localized phase transformation strategy. This meticulously engineered architecture effectively modulates the Na + storage mechanism from a typical conversion reaction to the surface redox pseudocapacitive reaction by precisely controlling the phase transition processes. Such structural control substantially increases Na + diffusion sites and reconstructs internal electric fields. Moreover, abundant heterointerfaces and porous microstructure effectively alleviate internal mechanical stresses, provide a large number of Na + storage sites and fast Na + migration channels, collectively ensuring ultrafast reaction kinetics and superior structural stability of the ZnS/ZnSe. As a result, the ZnS/ZnSe exhibits a remarkable specific capacity of 796 mAh g − 1 at 0.1 A g − 1 , stable cycling with no capacity decay over 1800 cycles at 15 A g − 1 , and capacity retention of 89% even at ultrahigh current density of 20 A g − 1 . Furthermore, the practical viability of this material is successfully demonstrated in a NaNi 1/3 Fe 1/3 Mn 1/3 O 2 (NFM)//ZnS/ZnSe full‐cell, which shows outstanding cycling stability without noticeable capacity fading after 600 cycles.
科研通智能强力驱动
Strongly Powered by AbleSci AI