Yao Dazhi, Tang Cheng, Zhi Xing, Johannessen Bernt, Slattery Ashley, Chern Shane, Qiao Shi-Zhang
Centre for Materials in Energy and Catalysis, School of Chemical Engineering and Advanced Materials, The University of Adelaide, Adelaide, SA, 5005, Australia.
Australia Synchrotron, Australian Nuclear Science and Technology Organisation (ANSTO), 800 Blackburn Rd, Clayton, VIC, 3168, Australia.
Adv Mater. 2023 Mar;35(11):e2209386. doi: 10.1002/adma.202209386. Epub 2023 Feb 6.
Dual-atom catalysts (DACs) have become an emerging platform to provide more flexible active sites for electrocatalytic reactions with multi-electron/proton transfer, such as the CO reduction reaction (CRR). However, the introduction of asymmetric dual-atom sites causes complexity in structure, leaving an incomprehensive understanding of the inter-metal interaction and catalytic mechanism. Taking NiCu DACs as an example, herein, a more rational structural model is proposed, and the distance-dependent inter-metal interaction is investigated by combining theoretical simulations and experiments, including density functional theory computation, aberration-corrected transmission electron microscopy, synchrotron-based X-ray absorption fine structure, and Monte Carlo experiments. A distance threshold around 5.3 Å between adjacent NiN and CuN moieties is revealed to trigger effective electronic regulation and boost CRR performance on both selectivity and activity. A universal macro-descriptor rigorously correlating the inter-metal distance and intrinsic material features (e.g., metal loading and thickness) is established to guide the rational design and synthesis of advanced DACs. This study highlights the significance of identifying the inter-metal interaction in DACs, and helps bridge the gap between theoretical study and experimental synthesis of atomically dispersed catalysts with highly correlated active sites.
双原子催化剂(DACs)已成为一个新兴平台,可为涉及多电子/质子转移的电催化反应(如CO还原反应(CRR))提供更灵活的活性位点。然而,不对称双原子位点的引入导致结构复杂,使得人们对金属间相互作用和催化机理的理解不够全面。以NiCu DACs为例,本文提出了一种更合理的结构模型,并通过结合理论模拟和实验来研究距离相关的金属间相互作用,这些实验包括密度泛函理论计算、像差校正透射电子显微镜、基于同步加速器的X射线吸收精细结构以及蒙特卡罗实验。结果表明,相邻NiN和CuN部分之间约5.3 Å的距离阈值可触发有效的电子调控,并提高CRR在选择性和活性方面的性能。建立了一个严格关联金属间距离与本征材料特征(如金属负载量和厚度)的通用宏观描述符,以指导先进DACs的合理设计与合成。这项研究突出了识别DACs中金属间相互作用的重要性,并有助于弥合具有高度相关活性位点的原子分散催化剂的理论研究与实验合成之间的差距。