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用于高性能阴离子交换膜水分解的具有增强疏气性的多孔钙钛矿纳米纤维

A Porous Perovskite Nanofiber with Reinforced Aerophobicity for High-Performance Anion Exchange Membrane Water Splitting.

作者信息

Li Lu, Zheng Zhilin, Li Jiaxing, Mu Yongbiao, Wang Yameng, Huang Zebing, Xiao Yiping, Huang Haitao, Wang Shuai, Chen Gao, Zeng Lin

机构信息

Department of Mechanical and Energy Engineering, Southern University of Science and Technology, Shenzhen, 518055, China.

Department of Applied Physics, The Hong Kong Polytechnic University, Hung Hom, Kowloon, Hong Kong, 999077, China.

出版信息

Small. 2023 Sep;19(38):e2301261. doi: 10.1002/smll.202301261. Epub 2023 May 24.

Abstract

Perovskite oxides stand out as emerging oxygen evolution reaction (OER) catalysts on account of their effective electrocatalytic performance and low costs. Nevertheless, perovskite oxides suffer from severe bubble overpotential and inhibited electrochemical performance in large current densities due to their small specific surface areas and structural compactness. Herein, the study highlights the electrospun nickel-substituted La Sr FeO (LSF) porous perovskite nanofibers, that is, La Sr Fe Ni O (denoted as ES-LSFN-x, x = 0, 0.1, 0.3, and 0.5), as high-performance OER electrocatalysts. The most effective La Sr Fe Ni O (ES-LSFN-0.5) nanofibers suggest a larger specific surface area, higher porosity, and faster mass transfer than the counterpart sample prepared by conventional sol-gel method (SG-LSFN-0.5), showing notably increased geometric and intrinsic activities. The bubble visualization results demonstrate that the enriched and nano-sized porosity of ES-LSFN-0.5 enables reinforced aerophobicity and rapid detachment of oxygen bubbles, thereby reducing the bubble overpotential and enhancing the electrochemical performance. As a result, the ES-LSFN-0.5-based anion exchange membrane water electrolysis delivers a superior stability of 100 h while the SG-LSFN-0.5 counterpart degrades rapidly within 20 h under a current density of 100 mA cm . The results highlight the advantage of porous electrocatalysts in optimizing the performance of large current density water electrolysis devices by reducing the bubble overpotential.

摘要

钙钛矿氧化物因其有效的电催化性能和低成本而成为新兴的析氧反应(OER)催化剂。然而,由于其比表面积小和结构致密,钙钛矿氧化物在大电流密度下存在严重的气泡过电位和电化学性能受到抑制的问题。在此,该研究重点介绍了电纺镍取代的LaSrFeO(LSF)多孔钙钛矿纳米纤维,即LaSrFeNiO(表示为ES-LSFN-x,x = 0、0.1、0.3和0.5),作为高性能的OER电催化剂。最有效的LaSrFeNiO(ES-LSFN-0.5)纳米纤维比通过传统溶胶-凝胶法制备的对应样品(SG-LSFN-0.5)具有更大的比表面积、更高的孔隙率和更快的传质速率,显示出显著提高的几何活性和本征活性。气泡可视化结果表明,ES-LSFN-0.5丰富的纳米级孔隙率使其具有增强的疏气性和氧气泡的快速脱离,从而降低了气泡过电位并提高了电化学性能。因此,基于ES-LSFN-0.5的阴离子交换膜水电解在100 mA cm的电流密度下具有100小时的优异稳定性,而SG-LSFN-0.5对应物在20小时内迅速降解。结果突出了多孔电催化剂在通过降低气泡过电位优化大电流密度水电解装置性能方面的优势。

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