材料科学
贵金属
纳米材料基催化剂
催化作用
纳米技术
耐久性
应变工程
电催化剂
氧还原反应
石墨烯
析氧
氢
氧化还原
甲醇
水准点(测量)
芯(光纤)
氧化物
分解水
过渡金属
还原(数学)
纳米结构
化学工程
制氢
放松(心理学)
氧还原
纳米颗粒
作者
Yanan Li,Xingwen Li,Yaohui Zhao,Yuan Ren,Zi‐Xin Ge,Jinshan Lu,Qian Wang,Ang Feng,Chenyao Xiao,Mingshang Jin
标识
DOI:10.1002/adma.202516277
摘要
Strain engineering plays a pivotal role in optimizing noble metal-based electrocatalysts, which are essential for advancing sustainable energy technologies. This review highlights recent breakthroughs extending beyond conventional approaches, focusing on two key innovations: 1) Core volume manipulation (CVM) in core-shell structures, enabling precise, dynamic, and reversible strain control via core contraction/expansion; 2) Stabilized strain architectures integrating strong interfacial interactions to construct exceptionally durable catalytic systems. CVM facilitates tunable strain, whereas strong interfacial interactions address strain relaxation crucially, ensuring long-term durability under harsh conditions. These advanced strategies deliver exceptional performance in key reactions, including oxygen reduction reaction (ORR), hydrogen evolution reaction (HER), methanol oxidation reaction (MOR), and CO2 reduction reaction (CO2RR), achieving significant enhancements in mass activity and dramatically improved stability over benchmark catalysts. It is critically discuss how these complementary strategies, CVM for tunability and strong interfacial interactions for inherent stability, offer unprecedented control and durability. Finally, current challenges and future directions for next-generation high-performance, durable electrocatalysts are outlined.
科研通智能强力驱动
Strongly Powered by AbleSci AI