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机械联锁增强了分子铜配合物的电催化氧还原活性和选择性。

Mechanical Interlocking Enhances the Electrocatalytic Oxygen Reduction Activity and Selectivity of Molecular Copper Complexes.

作者信息

Mo Xiaoyong, Deng Yulin, Lai Samuel Kin-Man, Gao Xutao, Yu Hung-Ling, Low Kam-Hung, Guo Zhengxiao, Wu Heng-Liang, Au-Yeung Ho Yu, Tse Edmund C M

机构信息

Department of Chemistry, HKU-CAS Joint Laboratory of New Materials, University of Hong Kong, Hong Kong, China.

Center for Condensed Matter Sciences, National Taiwan University, Taipei 10617, Taiwan.

出版信息

J Am Chem Soc. 2023 Mar 22;145(11):6087-6099. doi: 10.1021/jacs.2c10988. Epub 2023 Feb 28.

Abstract

Efficient O reduction reaction (ORR) for selective HO generation enables advanced fuel cell technology. Nonprecious metal catalysts are viable and attractive alternatives to state-of-the-art Pt-based materials that are expensive. Cu complexes inspired by Cu-containing O reduction enzymes in nature are yet to reach their desired ORR catalytic performance. Here, the concept of mechanical interlocking is introduced to the ligand architecture to enforce dynamic spatial restriction on the Cu coordination site. Interlocked catenane ligands could govern O binding mode, promote electron transfer, and facilitate product elimination. Our results show that ligand interlocking as a catenane steers the ORR selectivity to HO as the major product via the 4e pathway, rivaling the selectivity of Pt, and boosts the onset potential by 130 mV, the mass activity by 1.8 times, and the turnover frequency by 1.5 fold as compared to the noninterlocked counterpart. Our Cu catenane complex represents one of the first examples to take advantage of mechanical interlocking to afford electrocatalysts with enhanced activity and selectivity. The mechanistic insights gained through this integrated experimental and theoretical study are envisioned to be valuable not just to the area of ORR energy catalysis but also with broad implications on interlocked metal complexes that are of critical importance to the general fields in redox reactions involving proton-coupled electron transfer steps.

摘要

用于选择性生成H₂O₂的高效氧还原反应(ORR)推动了先进燃料电池技术的发展。非贵金属催化剂是昂贵的现有铂基材料的可行且有吸引力的替代品。受自然界含铜氧还原酶启发的铜配合物尚未达到其理想的ORR催化性能。在此,将机械互锁的概念引入配体结构中,以对铜配位位点施加动态空间限制。互锁的索烃配体可以控制氧的结合模式,促进电子转移,并促进产物消除。我们的结果表明,作为索烃的配体互锁通过4e途径将ORR选择性导向H₂O₂作为主要产物,可与铂的选择性相媲美,并且与未互锁的对应物相比,起始电位提高了130 mV,质量活性提高了1.8倍,周转频率提高了1.5倍。我们的铜索烃配合物是利用机械互锁来提供具有增强活性和选择性的电催化剂的首批实例之一。通过这项综合实验和理论研究获得的机理见解不仅对ORR能量催化领域具有价值,而且对涉及质子耦合电子转移步骤的氧化还原反应的一般领域至关重要的互锁金属配合物具有广泛的意义。

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