阳极
材料科学
碳纤维
热解
钾
生物量(生态学)
储能
钾离子电池
化学工程
扩散
纳米技术
电导率
复合材料
电极
冶金
化学
复合数
功率(物理)
物理化学
工程类
磷酸钒锂电池
海洋学
物理
量子力学
热力学
地质学
作者
Yue Wang,Jinjue Zeng,Li Wang,Chen Zhang,Qi Wang,Lei Gao,Dandan Sun,Xiangfen Jiang,Ming Hu,Lijun Yang,Daiqian Xie,Yufeng Hao,Zheng Hu,Xuebin Wang
标识
DOI:10.1002/adma.202410132
摘要
Abstract Potassium‐ion batteries (PIBs) are emerging as powerful candidate for grid‐oriented energy storage owing to their potentially low cost. Carbon is considered the promising anode for PIBs on the basis of its high conductivity and abundant sources. The biggest challenge confronted by carbon anodes lies in insufficient cycle life as well as rate capability, resulting from the limited interlayer spacing of the sp 2 ‐hybrid carbon incompatible with the large‐radius potassium. Herein, a biomass‐derived carbon with a large interlayer spacing of 0.44 nm is fabricated via a zinc‐assisted pyrolysis synthesis. The unique structure endows the carbon with superior capacity, rate capability, and cycle durability. The large interlayer spacing of carbons can promote fast potassium diffusion and alleviate the volume expansion during potassiation, conferring those rate capabilities and cycleability. The interconnected network structure is also able to shorten both the transport distances of electrons and ions. The demonstration exemplifies an advanced carbon for anodes of PIBs for energy storage applications.
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