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定制双原子催化剂的配位环境以促进电催化氮还原:第一性原理研究

Tailoring the coordination environment of double-atom catalysts to boost electrocatalytic nitrogen reduction: a first-principles study.

作者信息

Wu Jiarui, Wu Donghai, Li Haobo, Song Yanhao, Lv Wenjing, Yu Xiaohu, Ma Dongwei

机构信息

Key Laboratory for Special Functional Materials of Ministry of Education, and School of Materials Science and Engineering, Henan University, Kaifeng 475004, China.

Henan Key Laboratory of Nanocomposites and Applications, Institute of Nanostructured Functional Materials, Huanghe Science and Technology College, Zhengzhou 450006, China.

出版信息

Nanoscale. 2023 Oct 12;15(39):16056-16067. doi: 10.1039/d3nr03310d.

Abstract

Tailoring the coordination environment is an effective strategy to modulate the electronic structure and catalytic activity of atomically dispersed transition-metal (TM) catalysts, which has been widely investigated for single-atom catalysts but received less attention for emerging double-atom catalysts (DACs). Herein, based on first-principles calculations, taking the commonly studied N-coordinated graphene-based DACs as references, we explored the effect of coordination engineering on the catalytic behaviors of DACs towards the electrocatalytic nitrogen reduction reaction (NRR), which is realized through replacing one N atom by the B or O atom to form B, N or O, N co-coordinated DACs. We found that B, N or O, N co-coordination could significantly strengthen N adsorption and alter the N adsorption pattern of the TM dimer active center, which greatly facilitates N activation. Moreover, on the studied DACs, the linear scaling relationship between the binding strengths of key intermediates can be attenuated. Consequently, the O, N co-coordinated Mn DACs, exhibiting an ultralow limiting potential of -0.27 V, climb to the peak of the activity volcano. In addition, the experimental feasibility of this DAC system was also identified. Overall, benefiting from the coordination engineering effect, the chemical activity and catalytic performance of the DACs for NRR can be significantly boosted. This phenomena can be understood from the adjusted electronic structure of the TM dimer active center due to the changes of its coordination microenvironment, which significantly affects the binding strength (pattern) of key intermediates and changes the reaction pathways, leading to enhanced NRR activity and selectivity. This work highlights the importance of coordination engineering in developing DACs for the electrocatalytic NRR and other important reactions.

摘要

定制配位环境是调节原子分散过渡金属(TM)催化剂电子结构和催化活性的有效策略,这在单原子催化剂中已得到广泛研究,但在新兴的双原子催化剂(DAC)中受到的关注较少。在此,基于第一性原理计算,以常见的N配位石墨烯基DAC为参考,我们探索了配位工程对DAC催化电催化氮还原反应(NRR)行为的影响,这是通过用B或O原子取代一个N原子以形成B、N或O、N共配位的DAC来实现的。我们发现,B、N或O、N共配位可以显著增强N吸附并改变TM二聚体活性中心的N吸附模式,这极大地促进了N的活化。此外,在所研究的DAC上,关键中间体结合强度之间的线性标度关系可以被减弱。因此,具有-0.27 V超低极限电位的O、N共配位Mn DAC攀升至活性火山的峰值。此外,还确定了该DAC体系的实验可行性。总体而言,受益于配位工程效应,DAC用于NRR的化学活性和催化性能可以得到显著提高。这种现象可以从TM二聚体活性中心由于其配位微环境的变化而调整的电子结构来理解,这显著影响了关键中间体的结合强度(模式)并改变了反应途径,从而导致NRR活性和选择性增强。这项工作突出了配位工程在开发用于电催化NRR和其他重要反应的DAC中的重要性。

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