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通过引入氧空位设计高活性氧化物电催化剂的策略

A Design Strategy for Highly Active Oxide Electrocatalysts by Incorporation of Oxygen-Vacancies.

作者信息

Acharya Narayan, Karki Surendra B, Giordano Livia, Ramezanipour Farshid

机构信息

Department of Chemistry, University of Louisville, Louisville, Kentucky, 40292, USA.

Department of Materials Science, University of Milano-Bicocca, Via Cozzi 55, Milano, 20125, Italy.

出版信息

Small. 2024 Nov;20(48):e2403415. doi: 10.1002/smll.202403415. Epub 2024 Sep 3.

Abstract

Using both density functional theory (DFT+U) simulations and experiments, we show that the incorporation of an ordered array of oxygen-vacancies in a perovskite oxide can lead to enhancement of the electrocatalytic activity for the oxygen-evolution reaction (OER). As a benchmark, LaCoO was investigated, where the incorporation of oxygen-vacancies led to LaCoO (LaCoO), featuring a structural transformation. DFT+U simulations demonstrated the effect of oxygen-vacancies on lowering the potential required to achieve negative Gibbs Free Energy for all steps of the OER mechanism. This was also confirmed by experiments, where the vacancy-ordered catalyst LaCoO (LaCoO) showed a remarkable enhancement of electrocatalytic properties over the parent compound LaCoO that lacked vacancies. We also synthesized and studied an intermediate system, with a smaller degree of oxygen-vacancies, which showed intermediate electrocatalytic activity, lower than LaCoO and higher than LaCoO, confirming the expected trend and the impact of oxygen-vacancies. Furthermore, we employed additional DFT+U calculations to simulate a hypothetical material with the same formula as LaCoO but without the vacancy-order. We found that the gap between centers of Co d and O p bands, which is considered an OER descriptor, would be significantly greater for a hypothetical disordered material compared to an ordered system.

摘要

通过密度泛函理论(DFT+U)模拟和实验,我们表明在钙钛矿氧化物中引入有序排列的氧空位可提高析氧反应(OER)的电催化活性。作为基准,对LaCoO进行了研究,其中氧空位的引入导致LaCoO(LaCoO)发生结构转变。DFT+U模拟证明了氧空位对降低OER机理所有步骤达到负吉布斯自由能所需电位的影响。实验也证实了这一点,其中空位有序催化剂LaCoO(LaCoO)相对于缺乏空位的母体化合物LaCoO表现出显著增强的电催化性能。我们还合成并研究了一个氧空位程度较小的中间体系,其表现出介于LaCoO和LaCoO之间的中间电催化活性,证实了预期趋势以及氧空位的影响。此外,我们采用额外的DFT+U计算来模拟一种与LaCoO具有相同化学式但没有空位有序排列的假设材料。我们发现,与有序体系相比,对于假设的无序材料,被认为是OER描述符的Co d和O p带中心之间的能隙将显著更大。

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