Design and catalytic performance investigation of the Ni–N–C catalyst for CO2RR: a theoretical study†

IF 4.2 3区 化学 Q2 CHEMISTRY, PHYSICAL Catalysis Science & Technology Pub Date : 2025-02-14 Epub Date: 2025-01-24 DOI:10.1039/d4cy01394h
Yiming Sun , Xiaoyu Wang , Zhuofan Wu , Anmin Liu , Xuefeng Ren
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Abstract

The combustion of fossil fuels is increasingly contributing to global warming. The recycling of CO2 plays a crucial role, and the creation of a highly efficient electrocatalyst is essential for enhancing the efficiency of the reaction. This work focused on the theoretical design of Ni–N–C catalysts with different coordination environments of Ni through quantum chemical calculations and analyzed the differences between the coordination environments of pyridine N and pyrrole N on the performance of catalytic CO2 reduction to CO in order to identify the most efficient catalyst configuration. The Ni–N bonding energy of the catalyst with a vacancy was greater than that of the catalyst without a vacancy, and the activation ability of Ni-pyridine N2C1–C was the best. Ultimately, examining various catalysts for converting CO2 into CO revealed that Ni-pyridine N2C1–C exhibited the most effective catalytic impact. In contrast to the energy barrier ΔG = 2.9903 eV in the absence of a catalyst, the energy barrier ΔG = −1.4029 eV during the CO2 to CO catalytic reaction decreased by 4.3932 eV. This decrease was the largest among all the catalysts mentioned above, and the reaction could be spontaneous from a thermodynamic perspective. The research results provide a theoretical reference for the experimental preparation of catalysts for CO2 to CO conversion and the resource utilization of CO2.

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用于 CO2RR 的 Ni-N-C 催化剂的设计和催化性能调查:一项理论研究†。
化石燃料的燃烧正日益加剧全球变暖。二氧化碳的循环利用起着至关重要的作用,而高效电催化剂的发明对于提高反应效率至关重要。本工作重点通过量子化学计算对不同镍配位环境下的Ni - N - c催化剂进行理论设计,并分析吡啶N和吡咯N的配位环境对催化CO2还原为CO性能的差异,以确定最有效的催化剂配置。有空位催化剂的Ni-N键能大于无空位催化剂的Ni-N键能,且ni -吡啶N2C1-C的活化能力最好。最终,通过对不同催化剂对CO2转化为CO的考察,发现ni -吡啶N2C1-C具有最有效的催化作用。与无催化剂时的能量势垒ΔG = 2.9903 eV相比,CO2 - CO催化反应时的能量势垒ΔG =−1.4029 eV降低了4.3932 eV。这是上述催化剂中下降幅度最大的,从热力学的角度来看,反应可能是自发的。研究结果为CO2到CO转化催化剂的实验制备及CO2的资源化利用提供了理论参考。
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来源期刊
Catalysis Science & Technology
Catalysis Science & Technology CHEMISTRY, PHYSICAL-
CiteScore
8.70
自引率
6.00%
发文量
587
审稿时长
1.5 months
期刊介绍: A multidisciplinary journal focusing on cutting edge research across all fundamental science and technological aspects of catalysis. Editor-in-chief: Bert Weckhuysen Impact factor: 5.0 Time to first decision (peer reviewed only): 31 days
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