电催化剂
电极
材料科学
纳米技术
氧还原
电化学
生物量(生态学)
析氧
纤维素
碳纤维
化学修饰电极
可再生能源
电化学能量转换
多孔性
可持续能源
能量转换
氧还原反应
二氧化碳电化学还原
催化作用
环境科学
分解水
石墨烯
作者
Ying Long,Zhijie Chen,Jiangzhou Xie,Jinliang Zhu,Wei Wei,Yi‐Ming Yan,Bing‐Jie Ni
出处
期刊:Exploration
[Wiley]
日期:2026-05-25
卷期号:6 (3): 20250158-20250158
摘要
Electrocatalysis has emerged as a cornerstone in advancing energy conversion, storage, and the production of value-added chemicals. A pivotal determinant of electrocatalytic efficiency lies in the design of electrode materials, underscoring the urgent need for cost-effective electrodes with robust structural integrity, high electrical conductivity, substantial porosity, and excellent catalytic activity. Plants (e.g., wood and bamboo)-derived monolithic electrodes have garnered growing interest due to their inherent hierarchical porosity and abundant cellulose content, offering significant promise for diverse electrocatalytic reactions. This review focuses on the synthesis techniques of plant-based monolithic electrodes, highlighting their structural features and evaluating their impact on electrocatalytic performance. Additionally, applications of plant-based monolithic electrodes in small-molecule conversion processes, including water electrolysis, oxygen reduction, carbon dioxide reduction, and nitrogen reduction reactions, are analyzed. The discussion culminates in evaluating the persistent challenges and perspectives in electrode material development. These insights provide a roadmap for designing next-generation electrochemical devices that combine superior efficiency, stability, and environmental sustainability. By advancing the performance of plant-based monolithic electrodes, this review lays a robust foundation for developing high-performance, cost-effective, and sustainable electrochemical materials and technologies for future applications.
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