材料科学
氧化还原
阴极
复合数
球磨机
化学工程
电池(电)
金属
铁粉
电极
充电周期
储能
纳米技术
能量密度
复合材料
传质
工作(物理)
作者
Yanzhao Fang,Yi-Xiang Wang,Hayoung Park,X Liu,T. Wesley Surta,Sathya Narayanan Jagadeesan,Yiming Sui,Ziang Jiang,Mingliang Yu,Min Soo Jung,S M Yang,Samuel Patrick Murphy,Xueli Zheng,De‐en Jiang,Yuzhang Li,Tongchao Liu,Xiulei Ji
摘要
ABSTRACT The use of iron metal powder directly as the cathode active mass is a transformative opportunity to increase energy density and reduce costs for rechargeable batteries. Realizing this potential, however, requires creating a chemical environment that can activate multiple‐electron transfer of iron redox chemistry. Here, we report that the composite synthesized by ball milling Na 2 SO 4 , Fe metal, and CuS can be directly desodiated as a sodium‐ion battery cathode, which delivers a reversible discharge capacity of 149 mAh g −1 at ~2.6 V with stable cycling performance. Comprehensive spectroscopic characterization reveals that Fe serves as the primary redox center, while CuS functions as a redox mediator. The results demonstrate that the heterointerfaces formed by ball milling are critical for charge transfer and high iron utilization. This work establishes iron metal sodium‐salt composites as viable sodium‐ion battery cathodes by unlocking multi‐electron Fe redox within a composite architecture.
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