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具有氧空位-电子极化子的InSnRuO氧化物:用于酸性水氧化的有序且协同的In-Ov-Ru-O-Sn子结构

Oxygen Vacancy-Electron Polarons Featured InSnRuO Oxides: Orderly and Concerted In-Ov-Ru-O-Sn Substructures for Acidic Water Oxidation.

作者信息

Sun Yanhui, Xiao Mingyue, Liu Feng, Gan Jun, Gao Shixin, Liu Jingjun

机构信息

Beijing Key Laboratory of Electrochemical Process and Technology for Materials, Beijing University of Chemical Technology, Beijing, 100029, China.

Yunnan Precious Metals Lab, Kunming, 650100, China.

出版信息

Adv Mater. 2024 Dec;36(52):e2414579. doi: 10.1002/adma.202414579. Epub 2024 Nov 3.

Abstract

Polymetallic oxides with extraordinary electrons/geometry structure ensembles, trimmed electron bands, and way-out coordination environments, built by an isomorphic substitution strategy, may create unique contributing to concertedly catalyze water oxidation, which is of great significance for proton exchange membrane water electrolysis (PEMWE). Herein, well-defined rutile InSnRuO oxides with density-controllable oxygen vacancy (Ov)-free electron polarons are firstly fabricated by in situ isomorphic substitution, using trivalent In species as Ov generators and the adjacent metal ions as electron donors to form orderly and concerted In-Ov-Ru-O-Sn substructures in the tetravalent oxides. For acidic water oxidation, the obtained InSnRuO displays an ultralow overpotential of 183 mV (versus RHE) and a mass activity (MA) of 103.02 A mg , respectively. For a long-term stability test of PEMWE, it can run at a low and unchangeable cell potential (1.56 V) for 200 h at 50 mA cm, far exceeding current IrO||Pt/C assembly in 0.5 m HSO. Accelerated degradation testing results of PEMWE with pure water as the electrolyte show no significant increase in voltage even when the voltage is gradually increased from 1 to 5 A cm. The remarkably improved performance is associated with the concerted In-Ov-Ru-O-Sn substructures stabilized by the dense Ov-electron polarons, which synergistically activates band structure of oxygen species and adjacent Ru sites and then boosting the oxygen evolution kinetics. More importantly, the self-trapped Ov-electron polaron induces a decrease in the entropy and enthalpy, and efficiently hinder Ru atoms leaching by increasing the lattice atom diffusion energy barrier, achieves long-term stability of the oxide. This work may open a door to design next-generation Ru-based catalysts with polarons to create orderly and asymmetric substructures as active sites for efficient electrocatalysis in PEMWE application.

摘要

通过同构替代策略构建的具有非凡电子/几何结构组合、剪裁电子能带和独特配位环境的多金属氧化物,可能会产生独特的作用,协同催化水氧化,这对质子交换膜水电解(PEMWE)具有重要意义。在此,首次通过原位同构替代制备了具有密度可控的无氧空位(Ov)自由电子极化子的明确金红石型InSnRuO氧化物,使用三价In物种作为Ov生成剂,相邻金属离子作为电子供体,在四价氧化物中形成有序且协同的In-Ov-Ru-O-Sn子结构。对于酸性水氧化,所获得的InSnRuO分别显示出183 mV(相对于RHE)的超低过电位和103.02 A mg的质量活性(MA)。对于PEMWE的长期稳定性测试,它可以在50 mA cm下以低且不变的电池电位(1.56 V)运行200小时,远远超过0.5 m HSO中当前的IrO||Pt/C组件。以纯水为电解质的PEMWE加速降解测试结果表明,即使电流从1 A cm逐渐增加到5 A cm,电压也没有显著增加。显著提高的性能与由密集的Ov电子极化子稳定的协同In-Ov-Ru-O-Sn子结构有关,该结构协同激活氧物种和相邻Ru位点的能带结构,进而促进析氧动力学。更重要的是,自陷Ov电子极化子导致熵和焓降低,并通过增加晶格原子扩散能垒有效地阻碍Ru原子浸出,实现了氧化物的长期稳定性。这项工作可能为设计具有极化子的下一代Ru基催化剂打开一扇门,以创建有序且不对称的子结构作为PEMWE应用中高效电催化的活性位点。

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