剥离(纤维)
材料科学
X射线光电子能谱
解吸
电解质
阳极
金属
轴对称性
相间
钾
化学工程
分析化学(期刊)
离子
纳米技术
沉积(地质)
分解
部分
光电子学
法拉第效率
水溶液中的金属离子
碳纤维
作者
Q Liu,MingXiao Tian,Xueyu Lian,Zixiang Meng,Lin Zeng,Yongbiao Mu,Le Yu,Jingyu Sun
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2026-07-24
卷期号:12 (30): eaef1038-eaef1038
标识
DOI:10.1126/sciadv.aef1038
摘要
Potassium (K) metal anodes suffer from uncontrolled solid electrolyte interphase evolution and isolated K accumulation, greatly hindering the construction of practical anode-free batteries. To date, systematic investigations on K stripping behavior and isolated K formation, despite being fundamentally important, are still lacking. Here, we develop an axially coordinated single-atom iron (Fe) anchored on hollow carbon bowls to synergize promoted K desorption and stress-adaptive ion transport. Serving as current collector modification, the FeN 4 O 2 moiety optimizes K adsorption/desorption strength, regulates FSI − decomposition, and suppresses electronically isolated K. Meanwhile, the mechanically compliant carbon-bowl scaffold mitigates volumetric strain during cycling, preserving interfacial integrity and accelerating desorption at the stripping frontier. Multimodal evidence from cryo–transmission electron microscopy, x-ray photoelectron spectroscopy depth profile, and theoretical calculations collectively reveals a bidirectional regulation to enhance both deposition uniformity and stripping reversibility. The anode-free K metal full cell delivers nearly 100 milliampere-hours per gram over 200 cycles at 200 milliamperes per gram, readily rivaling the state-of-the-art counterparts.
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