Li Jingshuai, Jiang Bin, Yang Liu, Sun Yongli, Li Haojie, Shen Haochen, Dou Haozhen, Xiao Xiaoming, Xu Mi, Zhai Yong, Zhang Congcong, Zhang Luhong, Chen Zhongwei
School of Chemical Engineering and Technology, Tianjin University, Tianjin, 300072, China.
Power Battery & Systems Research Center, State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian, 116023, China.
Angew Chem Int Ed Engl. 2024 Dec 20;63(52):e202412566. doi: 10.1002/anie.202412566. Epub 2024 Oct 24.
Advanced oxygen reduction reaction (ORR) catalysts, integrating with well-dispersed single atom (SA) and atomic cluster (AC) sites, showcase potential in bolstering catalytic activity. However, the precise structural modulation and in-depth investigation of their catalytic mechanisms pose ongoing challenges. Herein, a proactive cluster lockdown strategy is introduced, relying on the confinement of trinuclear clusters with metal atom exchange in the covalent organic polymers, enabling the targeted synthesis of a series of multicomponent ensembles featuring FeCo (Fe or Co) dual-single-atom (DSA) and atomic cluster (AC) configurations (FeCo-DSA/AC) via thermal pyrolysis. The designed FeCo-DSA/AC surpasses Fe- and Co-derived counterparts by 18 mV and 49 mV in ORR half-wave potential, whilst exhibiting exemplary performance in Zn-air batteries. Comprehensive analysis and theoretical simulation elucidate the enhanced activity stems from adeptly orchestrating d -d and O 2p orbital hybridization proximate to the Fermi level, fine-tuning the antibonding states to expedite OH* desorption and OOH* formation, thereby augmenting catalytic activity. This work elucidates the synergistic potentiation of active sites in hybrid electrocatalysts, pioneering innovative targeted design strategies for single-atom-cluster electrocatalysts.
先进的氧还原反应(ORR)催化剂,集成了分散良好的单原子(SA)和原子簇(AC)位点,在增强催化活性方面展现出潜力。然而,其精确的结构调控及其催化机制的深入研究仍面临挑战。在此,引入了一种主动的簇锁定策略,该策略依赖于在共价有机聚合物中通过金属原子交换对三核簇进行限制,从而能够通过热解靶向合成一系列具有FeCo(Fe或Co)双单原子(DSA)和原子簇(AC)构型(FeCo-DSA/AC)的多组分集合体。所设计的FeCo-DSA/AC在ORR半波电位方面比铁基和钴基对应物分别高出18 mV和49 mV,同时在锌空气电池中表现出优异的性能。综合分析和理论模拟表明,活性增强源于在费米能级附近巧妙地协调d-d和O 2p轨道杂化,微调反键态以加速OH脱附和OOH形成,从而提高催化活性。这项工作阐明了混合电催化剂中活性位点的协同增强作用,开创了单原子簇电催化剂的创新靶向设计策略。