论文标题

脱离距离依赖的位点间相互作用以及异核单原子催化剂对电化学还原的磁性转变效应

Unravelling Distance-Dependent Inter-Site Interactions and Magnetic Transition Effects of Heteronuclear Single Atom Catalysts on Electrochemical Oxygen Reduction

论文作者

Yang, Tong, Zhou, Jun, Ma, Xiaoyang, Ding, Keda, Tan, Kay Chen, Wang, Ge, Huang, Haitao, Yang, Ming

论文摘要

高负载方案中单个原子催化剂(SAC)之间的位点间相互作用对于调整催化性能至关重要。但是,对这种相互作用及其距离依赖性影响的理解仍然难以捉摸,尤其是对于异核囊。在这项研究中,我们揭示了依赖距离的地点间相互作用对囊催化性能的影响。使用密度函数理论计算,我们系统地研究了在氮掺杂的石墨烯(Fen4-C和CON4-C)上共支撑在氧还原反应(ORR)上的异核铁和钴单原子。我们发现,随着FE和CO SACS之间的距离降低,Fen4-C表现出降低的催化活性,可以通过轴向羟基配体的存在来减轻催化活性,而CON4-C的活性显示了在中间距离处达到最佳的火山样演化。我们进一步阐明,ORR中间吸附物吸附后向高旋转状态的过渡是导致Fen4-C和CON4-C在短地点间距离下的活性下降。还发现这种高旋转状态过渡会显着转移羟基(*OH)和氢过氧(*ooH)吸附物之间的线性关系。这些发现不仅阐明了异核囊之间距离依赖的位点间相互作用的SAC特异性效应,而且还铺平了在转移多电子化学反应中观察到的长期线性关系的方法。

Inter-site interactions between single atom catalysts (SACs) in the high loading regime are critical to tuning the catalytic performance. However, the understanding on such interactions and their distance dependent effects remains elusive, especially for the heteronuclear SACs. In this study, we reveal the effects of the distance-dependent inter-site interaction on the catalytic performance of SACs. Using the density functional theory calculations, we systematically investigate the heteronuclear iron and cobalt single atoms co-supported on the nitrogen-doped graphene (FeN4-C and CoN4-C) for oxygen reduction reaction (ORR). We find that as the distance between Fe and Co SACs decreases, FeN4-C exhibits a reduced catalytic activity, which can be mitigated by the presence of an axial hydroxyl ligand, whereas the activity of CoN4-C shows a volcano-like evolution with the optimum reached at the intermediate distance. We further unravel that the transition towards the high-spin state upon adsorption of ORR intermediate adsorbates is responsible for the decreased activity of both FeN4-C and CoN4-C at short inter-site distance. Such high-spin state transition is also found to significantly shift the linear relation between hydroxyl (*OH) and hydroperoxyl (*OOH) adsorbates. These findings not only shed light on the SAC-specific effect of the distance-dependent inter-site interaction between heteronuclear SACs, but also pave a way towards shifting the long-standing linear relations observed in multiple-electron chemical reactions.

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