Leemans Jari, Calderon Mora Jennifer, Albertini Petru P, Kumar Krishna, Boulanger Coline, Buonsanti Raffaella
Laboratory of Nanochemistry for Energy, Institute of Chemical Sciences and Engineering, École Polytechnique Fédérale de Lausanne, 1950 Sion, Switzerland.
Chem Mater. 2025 Apr 24;37(9):3343-3352. doi: 10.1021/acs.chemmater.5c00135. eCollection 2025 May 13.
Understanding the impact of composition and interfaces between metals and oxides is a goal of interest for many chemical reactions. Herein, we propose a framework to map correlations between the electrochemical behavior of the oxide and the stability and reactivity of metal|oxide interfaces, exemplified by Cu|oxide for the electrochemical CO reduction reaction (CORR). Copper materials interfaced with metal oxides have emerged as promising CORR catalysts for selectivity toward multicarbon products, including alcohols; stability under operation has been reported for some of them. However, design rules are currently lacking. Herein, we propose the synthesis of well-defined Cu-MOx core-shell nanoparticles to investigate and compare the behavior of Cu-ZrOx, Cu-MgOx, and Cu-TiOx. By tracking the speciation and morphological evolution of these model catalyst materials, we find that the cathodic stability of the formed interfaces is determined by the operating potential and phase stability of the pure oxides and by their chemical interaction with copper. We learn that the interplay between these factors shapes the restructuring pathways for Cu-MOx catalysts and eventually drives their selectivity in the CORR. The developed understanding can be applied beyond this reaction, and the developed nanomaterials can be used beyond catalysis.
了解金属与氧化物之间的组成和界面的影响是许多化学反应所关注的目标。在此,我们提出一个框架,以描绘氧化物的电化学行为与金属|氧化物界面的稳定性和反应性之间的相关性,以用于电化学CO还原反应(CORR)的Cu|氧化物为例进行说明。与金属氧化物界面结合的铜材料已成为有前景的CORR催化剂,对包括醇类在内的多碳产物具有选择性;其中一些已报道在运行过程中具有稳定性。然而,目前缺乏设计规则。在此,我们提出合成定义明确的Cu-MOx核壳纳米颗粒,以研究和比较Cu-ZrOx、Cu-MgOx和Cu-TiOx的行为。通过追踪这些模型催化剂材料的物种形成和形态演变,我们发现所形成界面的阴极稳定性由纯氧化物的操作电位和相稳定性以及它们与铜的化学相互作用决定。我们了解到这些因素之间的相互作用塑造了Cu-MOx催化剂的重构途径,并最终驱动它们在CORR中的选择性。所形成的认识可应用于该反应之外,所开发的纳米材料也可用于催化之外的领域。