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分子氮诱导B/N共掺杂石墨烯负载的单过渡金属原子的结构演化以增强氮电还原性能。

Molecular nitrogen induced structural evolution of single transition metal atoms supported by B/N co-doped graphene for enhanced nitrogen electroreduction performance.

作者信息

Bai Zhiqiang, Wang Jian, Peng Xiaomeng, Liu Yufang, Zhang Wenhua

机构信息

School of Physics, Henan Normal University, Xinxiang, Henan, 453007, China.

School of Cable Engineering, Henan Institute of Technology, Xinxiang, Henan, 453000, China.

出版信息

Phys Chem Chem Phys. 2023 Oct 18;25(40):27075-27082. doi: 10.1039/d3cp03451h.

Abstract

The structural evolution of local coordination environments of single-atom catalysts (SACs) under reaction conditions plays an important role in the catalytic performance of SACs. Using density functional theory calculations, the possible structural evolution of transition metal single atoms supported by B/N codoped-graphene (TM-BN/G) under nitrogen reduction reaction (NRR) conditions is explored and the catalytic performance based on reconstructed SACs is theoretically evaluated. A novel nitrogen adsorption mode on TM-BN/G is discovered and the protonation of one of the N atoms results in the TM atoms binding with three N atoms, among which one associates with two B atoms (TM-NB/G). It is suggested that the NB/G supported tungsten single atom (W-NB/G) exhibits excellent N activity with a limiting potential of -0.27 V and high ammonia selectivity. Electronic structure analysis indicates that the coordination of NB/G redistributes the charge density of central W, shifts its d band center upward and strengthens the interaction of W and the adsorbed nitrogen molecule, thereby endowing it with better NRR performance, compared with that supported by pyridine-3N-doped graphene and pyrrolic-3N-doped graphene.

摘要

单原子催化剂(SACs)在反应条件下局部配位环境的结构演变对其催化性能起着重要作用。利用密度泛函理论计算,探索了硼/氮共掺杂石墨烯负载的过渡金属单原子(TM-BN/G)在氮还原反应(NRR)条件下可能的结构演变,并从理论上评估了基于重构单原子催化剂的催化性能。发现了一种在TM-BN/G上的新型氮吸附模式,其中一个氮原子的质子化导致TM原子与三个氮原子结合,其中一个与两个硼原子相连(TM-NB/G)。研究表明,NB/G负载的钨单原子(W-NB/G)表现出优异的析氮活性,极限电位为-0.27 V,且氨选择性高。电子结构分析表明,NB/G的配位作用重新分布了中心钨的电荷密度,使其d带中心上移,并增强了钨与吸附氮分子的相互作用,从而使其与吡啶-3N-掺杂石墨烯和吡咯-3N-掺杂石墨烯负载的催化剂相比具有更好的NRR性能。

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