材料科学
过电位
纳米棒
阴极
电池(电)
双功能
催化作用
化学工程
电化学
纳米技术
合理设计
密度泛函理论
储能
热液循环
电流密度
交换电流密度
双功能催化剂
能量转换
电催化剂
可持续能源
作者
Fei Hua,Kang Wu,Yuhang Ren,Jingyu Xu,Qinghua Deng,Tianyu Wang
标识
DOI:10.1002/slct.202504838
摘要
ABSTRACT Rational recycling of spent lithium‐ion batteries (LIBs) into high‐value functional materials represents a sustainable strategy for resource conservation and environmental protection. Herein, a facile and scalable approach for the upcycling of discarded LiCoO 2 cathodes from 3C electronic waste into catalytically active Co 3 O 4 nanorods is demonstrated by direct hydrothermal transformation of Co 2+ ions. When employed as a cathode catalyst in Li─CO 2 batteries, the upcycled Co 3 O 4 nanorods exhibited superior electrocatalytic activity toward both CO 2 reduction and evolution reactions. The batteries delivered enhanced electrochemical performance, including high specific capacity (7785 mA h g −1 ), improved discharge voltage plateau (2.58 V), reduced overpotential (1.27 V), and significantly extended cycle life (>147 cycles) at a current of 100 mA g −1 . Density functional theory calculations were integrated with experimental analyses to elucidate the origin of the enhanced performance, revealing the unique electronic structure and surface properties of the Co 3 O 4 nanorods facilitate favorable adsorption/desorption of key reaction intermediates, lowering the reaction energy barriers and promoting efficient bifunctional catalysis. This work not only presents a practical pathway for the functional upcycling of spent LIBs into advanced energy materials but also provides valuable insights into the rational design of efficient catalysts for metal‐CO 2 batteries.
科研通智能强力驱动
Strongly Powered by AbleSci AI