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用于将氮气电还原为氨的单原子合金的高通量筛选

High-Throughput Screening of a Single-Atom Alloy for Electroreduction of Dinitrogen to Ammonia.

作者信息

Zheng Guokui, Li Yanle, Qian Xu, Yao Ge, Tian Ziqi, Zhang Xingwang, Chen Liang

机构信息

Key Laboratory of Biomass Chemical Engineering of Ministry of Education, College of Chemical and Biological Engineering Zhejiang University, Zheda Road 38, Hangzhou, Zhejiang Province 310027, China.

Ningbo Institute of Materials Technology and Engineering, Chinese Academy of Sciences, Ningbo 315201, Zhejiang, China.

出版信息

ACS Appl Mater Interfaces. 2021 Apr 14;13(14):16336-16344. doi: 10.1021/acsami.1c01098. Epub 2021 Apr 2.

Abstract

Exploring electrocatalysts with high activity, selectivity, and stability is essential for the development of applicable electrocatalytic ammonia synthesis technology. By performing density functional theory calculations, we systematically investigated the potential of a series of transition-metal-doped Au-based single-atom alloys (SAAs) as promising electrocatalysts for nitrogen reduction reaction (NRR). The overall process for the Au-based electrocatalyst suffers from the limiting potential arising from the first hydrogenation step of the reduction of *N to *NNH. However, SAAs showed to be favorable toward lowering free energy barriers by increasing the binding strength of N. According to simulation results, three descriptors were proposed to describe the first hydrogenation step Δ(*N → *NNH): Δ(*NNH), d-band center, and d/√E. Eight doped elements (Ti, V, Nb, Ru, Ta, Os, W, and Mo) were initially screened out with a limiting potential ranging from -0.75 to -0.30 V. Particularly, Mo- and W-doped systems possess the best activity with a limiting potential of -0.30 V each. Then, the intrinsic relationship between the structure and potential performance was analyzed using machine learning. The selectivity, feasibility, and stability of these candidates were also evaluated, confirming that SAA containing Mo, Ru, Ta, and W could be outstanding NRR electrocatalysts. This work not only broadens our understanding of SAA application in electrocatalysis, but also leads to the discovery of novel NRR electrocatalysts.

摘要

探索具有高活性、选择性和稳定性的电催化剂对于适用的电催化氨合成技术的发展至关重要。通过进行密度泛函理论计算,我们系统地研究了一系列过渡金属掺杂的金基金属单原子合金(SAA)作为氮还原反应(NRR)有前景的电催化剂的潜力。金基电催化剂的整个过程受到N还原为NNH的第一步氢化所产生的极限电位的影响。然而,SAA通过增加N的结合强度显示出有利于降低自由能垒。根据模拟结果,提出了三个描述符来描述第一步氢化Δ(*N → *NNH):Δ(*NNH)、d带中心和d/√E。最初筛选出了八种掺杂元素(Ti、V、Nb、Ru、Ta、Os、W和Mo),其极限电位范围为-0.75至-0.30 V。特别地,Mo和W掺杂的体系具有最佳活性,极限电位均为-0.30 V。然后,使用机器学习分析了结构与潜在性能之间的内在关系。还评估了这些候选物的选择性、可行性和稳定性,证实含Mo、Ru、Ta和W的SAA可能是出色的NRR电催化剂。这项工作不仅拓宽了我们对SAA在电催化中应用的理解,还导致了新型NRR电催化剂的发现。

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