合理设计
纳米技术
储能
杂原子
电化学储能
材料科学
可再生能源
相容性(地球化学)
可持续能源
可扩展性
材料设计
碳化
电池(电)
工作(物理)
电化学
生化工程
电解质
可持续设计
设计要素和原则
计算机科学
可再生资源
超级电容器
有机自由基电池
智能材料
作者
Yiwen Chen,Sisi Zhang,Jianchao Gao,Yu-Xin Wei,Chenxiao Lin,Yong Zheng,Ping Feng
摘要
Zinc-ion energy storage systems (ZIESS) are promising, safe, and cost-effective alternatives to lithium-ion batteries but still face challenges such as dendrite growth, sluggish ion transport, and interfacial instability. Lignin, a renewable aromatic biopolymer, is a sustainable platform to mitigate these issues owing to its abundant functional groups and structural tunability. In ZIESS, lignin-based materials play multifunctional roles in electrodes and electrolytes through their tunable chemistry, redox activity, and compatibility with aqueous zinc systems. This review summarizes recent advances in the rational design of lignin-based materials for ZIESS, emphasizing chemical/physical modification and carbonization with heteroatom doping to enhance ionic/electronic transport and interfacial stability. The diverse functions of lignin-based materials in electrodes, electrolytes, binders, separators, and interfacial layers are highlighted, along with key challenges and future directions toward scalable and green fabrication. This work provides integrated insights that couple molecular design with electrochemical function, guiding the sustainable development of lignin-based materials for advanced ZIESS.
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