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更新用于水氧化的重构羟基氧化物活性相的亚纳米级认知。

Updating the sub-nanometric cognition of reconstructed oxyhydroxide active phase for water oxidation.

作者信息

Sun Yu, Xie Yong, Chen Xiaoxuan, Wu Jing, Liu Pengfei, Wang Xin, Tian Zhen, Zheng Wenhao, Jiang Zhouyu, Kang Zhuo, Zhang Yue

机构信息

Academy for Advanced Interdisciplinary Science and Technology, Beijing Key Laboratory for Advanced Energy Materials and Technologies, State Key Laboratory for Advanced Metals and Materials, University of Science and Technology Beijing, Beijing, PR China.

School of Materials Science and Engineering, Key Laboratory of Advanced Materials and Devices for Post-Moore Chips Ministry of Education, University of Science and Technology Beijing, Beijing, PR China.

出版信息

Nat Commun. 2025 Mar 30;16(1):3073. doi: 10.1038/s41467-025-58424-y.

Abstract

Unveiling structure-activity correlations at the sub-nanoscale remains an essential challenge in catalysis science. During electrocatalysis, dynamic structural evolution drives the ambiguous entanglement of crystals and electrons degrees of freedom that obscure the activity origin. Here, we track the structural evolution of Ni-based model pre-catalysts (Ni(OH), NiS, NiSe, NiTe), detailing their catalytically active state during water oxidation via operando techniques and theoretical calculations. We reveal the sub-nanometric structural difference of NiO unit with a regular distortion in the reconstructed active phase NiOOH, codetermined by the geometric (bond lengths) and electronic (covalency) structure of the pre-catalysts on both spatial and temporal scales. The symmetry-broken active units induce the delicate balance of the p and d orbitals in NiOOH, further steering the modulation of catalytic intermediate configurations and mechanisms, with improved performance. This work recognizes the fine structural differences of the active phases from the sub-nanometer scale, and quantitatively explains their influence on activity. Our findings provide a more intuitive design framework for high-efficiency materials through targeted symmetry engineering of active units.

摘要

揭示亚纳米尺度下的结构-活性关系仍然是催化科学中的一项重大挑战。在电催化过程中,动态结构演化导致晶体和电子自由度的模糊纠缠,从而掩盖了活性起源。在此,我们追踪了镍基模型预催化剂(Ni(OH)、NiS、NiSe、NiTe)的结构演化,通过原位技术和理论计算详细阐述了它们在水氧化过程中的催化活性状态。我们揭示了重构活性相NiOOH中具有规则畸变的NiO单元的亚纳米结构差异,这在空间和时间尺度上由预催化剂的几何(键长)和电子(共价性)结构共同决定。对称性破缺的活性单元诱导了NiOOH中p轨道和d轨道的微妙平衡,进一步调控催化中间体的构型和机理,从而提高了性能。这项工作认识到了活性相在亚纳米尺度上的精细结构差异,并定量解释了它们对活性的影响。我们的研究结果通过对活性单元进行有针对性的对称性工程,为高效材料提供了更直观的设计框架。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d545/11955520/d849b8a0c1e6/41467_2025_58424_Fig1_HTML.jpg

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