International Joint Research Center for Advanced Energy Materials of Yunnan Province, Yunnan Key Laboratory of Carbon Neutrality and Green Low-carbon Technologies, School of Materials and Energy, Yunnan University, 650091, Kunming, China.
Key Laboratory of Material Chemistry for Energy Conversion and Storage (Ministry of Education), Hubei Key Laboratory of Material Chemistry and Service Failure, State Key Laboratory of Materials Processing and Die & Mould Technology, School of Chemistry and Chemical Engineering, Huazhong University of Science and Technology (HUST), 1037 Luoyu Road, 430074, Wuhan, China.
Angew Chem Int Ed Engl. 2023 Jul 3;62(27):e202303871. doi: 10.1002/anie.202303871. Epub 2023 May 23.
A novel type of covalent organic frameworks has been developed by assembling definite cobalt-nitrogen-carbon configurations onto carbon nanotubes using linkers that have varying electronic effects. This innovative approach has resulted in an efficient electrocatalyst for oxygen reduction, which is understood by a combination of in situ spectroelectrochemistry and the bond order theorem. The strong interaction between the electron-donating carbon nanotubes and the electron-accepting linker mitigates the trend of charge loss at cobalt sites, while inducing the generation of high spin state. This enhances the adsorption strength and electron transfer between the cobalt center and reactants/intermediates, leading to an improved oxygen reduction capability. This work not only presents an effective strategy for developing efficient non-noble metal electrocatalysts through reticular chemistry, but also provides valuable insights into regulating the electronic configuration and charge behavior of active sites in designing high-performance electrocatalysts.
一种新型的共价有机框架已经被开发出来,通过使用具有不同电子效应的连接物将确定的钴-氮-碳结构组装到碳纳米管上。这种创新的方法产生了一种高效的氧还原电催化剂,这是通过原位光谱电化学和键序定理的结合来理解的。电子供体碳纳米管和电子受体连接物之间的强相互作用减轻了钴位点电荷损失的趋势,同时诱导高自旋态的产生。这增强了钴中心与反应物/中间体之间的吸附强度和电子转移,从而提高了氧还原能力。这项工作不仅提出了通过网状化学开发高效非贵金属电催化剂的有效策略,而且为调节活性位点的电子构型和电荷行为提供了有价值的见解,以设计高性能电催化剂。