Li Jianing, Zhao Yuanmeng, Xie Xiangting, Shi Yuxin, Li Li, Yang Shaoxi, Xu Hai-Bing, Wang Zheng, Chen Xueli, Hu Yuxuan, Yu Hai-Bin, Li Yuebin, Peng Xu
Ministry-of-Education Key Laboratory for the Synthesis and Application of Organic Functional Molecules, College of Chemistry & Chemical Engineering, Qianjiang Institute of Industrial Technology, School of Microelectronics, Hubei University, Youyi Avenue 368#, Wuhan 430062, P. R. China.
Wuhan National High Magnetic Field Center & School of Physic, Huazhong University of Science and Technology, Wuhan 430074, P. R. China.
Inorg Chem. 2024 Aug 26;63(34):16103-16113. doi: 10.1021/acs.inorgchem.4c02915. Epub 2024 Aug 16.
The construction of doped molecular clusters is an intriguing way to perform bimetallic doping for electrocatalysts. However, efficiently harnessing the benefits of a doping strategy and alloy engineering to create a nanostructure for electrocatalytic application at the molecular level has consistently posed a challenge. Here we propose an in situ reconstruction strategy aimed at producing an alloy nanostructure through a pyrolysis process, originating from bowknot-like heterometallic clusters. The Schiff base, denoted as ligand L1 (-vanillin ethylenediamine), was introduced as a precursor to coordinate Fe and Co metals, thereby yielding a heteronuclear metal cluster [(FeCo)(L1)O]CHCN. Subsequently, a comprehensive investigation of the in situ reconstruction process (FeCo)(L1)O → [(FeCo)(L1)O] → [M-O-M/M-O] [CH/CHO/HC═N/CH/CH] → [FeCo/FeO/FeO/CoO][carbon layer] led to the formation of MO/CoFe@NC-700 during the pyrolysis. This process reveals that the metals Fe and Co in the clusters undergo partly in situ evolution into FeCo alloys, resulting in the successful preparation of MO/CoFe@NC (M = Fe, Co) nanomaterials that leverage the advantages of both doping strategies and alloy engineering. The synergistic interaction between alloy particles and metal oxides establishes active sites that contribute to the excellent oxygen evolution (OER) and hydrogen evolution (HER) catalytic behaviors. Notably, these materials exhibit outstanding OER and HER properties under alkaline conditions, with overpotentials of 191 and 88 mV for OER and HER, respectively, at 10 mA cm. Investigation of the in situ conversion of Schiff base bimetal clusters into alloy materials through pyrolysis offers a novel strategy for advancing electrocatalytic applications.
构建掺杂分子簇是对电催化剂进行双金属掺杂的一种有趣方法。然而,在分子水平上有效利用掺杂策略和合金工程的优势来创建用于电催化应用的纳米结构一直是一个挑战。在此,我们提出一种原位重构策略,旨在通过热解过程从蝴蝶结状异金属簇生成合金纳米结构。引入了席夫碱(记为配体L1,即香草醛乙二胺)作为前驱体来配位铁和钴金属,从而生成异核金属簇[(FeCo)(L1)O]CHCN。随后,对原位重构过程(FeCo)(L1)O → [(FeCo)(L1)O] → [M - O - M/M - O] [CH/CHO/HC═N/CH/CH] → [FeCo/FeO/FeO/CoO][碳层]进行了全面研究,结果在热解过程中形成了MO/CoFe@NC - 700。这一过程表明,簇中的铁和钴金属部分原位演化为FeCo合金,从而成功制备出利用了掺杂策略和合金工程优势的MO/CoFe@NC(M = Fe,Co)纳米材料。合金颗粒与金属氧化物之间的协同相互作用建立了有助于实现优异析氧(OER)和析氢(HER)催化行为的活性位点。值得注意的是,这些材料在碱性条件下表现出出色的OER和HER性能,在10 mA cm时,OER和HER的过电位分别为191和88 mV。研究通过热解将席夫碱双金属簇原位转化为合金材料为推进电催化应用提供了一种新策略。