阳极
材料科学
可再生能源
碳化
碳纤维
环境科学
废物管理
磷
电化学
生物量(生态学)
工艺工程
多孔性
化学工程
可再生资源
复合数
层状结构
纳米技术
同种类的
储能
化学气相沉积
资源回收
沉积(地质)
可持续能源
作者
Mengdan Zhang,Xinru Zhang,Longfei Han,Xiangming Hu,Zhihe Yu,Guansheng Qi,Yurui Deng,Lihua Jiang,Yuan Cheng,Yongchun Kan,Linlin Wang,Xiangming He
标识
DOI:10.1002/batt.202500788
摘要
Tackling the dual challenges of global resource circularity and sustainable energy storage, this study pioneers a novel strategy for converting waste biomass (discarded cloth and paper) into high‐performance composite anodes for sodium‐ion batteries (SIBs) through a dual‐engineering approach. Employing a gradient carbonization strategy, 3D porous carbon matrices retaining the intrinsic hierarchical architecture of the precursors are fabricated. Notably, the waste paper‐derived carbon framework exhibits exceptional self‐supporting properties. Subsequent vapor deposition enables the homogeneous encapsulation of red phosphorus (RP) throughout the carbon skeleton, yielding a stable Carbon@RP composite. Electrochemical evaluations demonstrate that the paper‐derived Carbon@RP anode delivers a remarkable reversible capacity of 813.5 at 0.5 mA cm −2 . Mechanistic studies reveal that the paper‐inherited “book‐like” lamellar channel structure facilitates deep phosphorus infusion. This work establishes a closed‐loop paradigm integrating “waste‐to‐energy storage” conversion, offering a practical and scalable pathway toward eco‐friendly, high‐energy‐density SIBs for next‐generation grid‐scale renewable energy systems.
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