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量化铁基单原子催化剂中不对称配位与氧还原活性的相关性

Quantifying Asymmetric Coordination to Correlate with Oxygen Reduction Activity in Fe-Based Single-Atom Catalysts.

作者信息

Cao Yanhui, Liu Yuan, Zheng Xuerong, Yang Jingxia, Wang Haozhi, Zhang Jinfeng, Han Xiaopeng, Deng Yida, Rupprechter Günther, Hu Wenbin

机构信息

School of Materials Science and Engineering, State Key Laboratory of Precious Metal Functional Materials, Tianjin Key Laboratory of Composite and Functional Materials, Key Laboratory of Advanced Ceramics and Machining Technology (Ministry of Education), Tianjin University, Tianjin, 300072, P. R. China.

School of Materials Science and Engineering, State Key Laboratory of Tropic Ocean Engineering Materials and Materials Evaluation, Key Laboratory of Pico Electron Microscopy of Hainan Province, Hainan University, Haikou, 570228, P. R. China.

出版信息

Angew Chem Int Ed Engl. 2025 Apr 1;64(14):e202423556. doi: 10.1002/anie.202423556. Epub 2025 Feb 21.

Abstract

Precisely manipulating asymmetric coordination configurations and examining electronic effects enable to tunethe intrinsic oxygen reduction reaction (ORR) activity of single-atom catalysts (SACs). However, the lackof a definite relationship between coordination asymmetry and catalytic activity makes the rational design of SACs ambiguous. Here, we propose a concept of "asymmetry degree" to quantify asymmetric coordination configurations and assess the effectiveness of active moieties in Fe-based SACs. A theoretical framework is established, elucidating the volcanic relationship between asymmetry degree and ORR activity by constructing a series of Fe-based SAC models doped with non-metal atoms (B, P, S, Se, and Te) in the first or second coordination sphere, which aligns with Sabatier principle. The predicted ORR activity of Fe asymmetric active moieties is then experimentally validated using asymmetry degree. The combined computational and experimental results suggest that single-atom moiety with a moderate asymmetry degree exhibits optimal intrinsic ORR activity, because breaking the square-planar symmetry of FeN can alter the electronic population of the Fe 3d-orbital, thereby optimizing the adsorption-desorption strength of intermediates and thus enhancing the intrinsic ORR activity. This fundamental understanding of catalytic activity from geometric and electronic aspects offers a rational guidance to design high-performance SACs with asymmetric configurations.

摘要

精确控制不对称配位构型并研究电子效应能够调节单原子催化剂(SACs)的本征氧还原反应(ORR)活性。然而,配位不对称性与催化活性之间缺乏明确的关系使得SACs的合理设计变得模糊不清。在此,我们提出“不对称度”的概念来量化不对称配位构型,并评估铁基SACs中活性部分的有效性。通过构建一系列在第一或第二配位球中掺杂非金属原子(B、P、S、Se和Te)的铁基SAC模型,建立了一个理论框架,阐明了不对称度与ORR活性之间的火山型关系,这与萨巴蒂尔原理相符。然后利用不对称度对铁不对称活性部分的预测ORR活性进行了实验验证。计算和实验结果相结合表明,具有适度不对称度的单原子部分表现出最佳的本征ORR活性,因为打破FeN的平面四方对称性可以改变Fe 3d轨道的电子布居,从而优化中间体的吸附-脱附强度,进而提高本征ORR活性。这种从几何和电子方面对催化活性的基本理解为设计具有不对称构型的高性能SACs提供了合理的指导。

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