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Optimizing LaNiO3 surface structure for an efficient oxygen reduction reaction
DOI:10.1039/d5ta01346a.png)
Abstract
En 中文
Perovskite oxides, with their flexible electronic structure and low cost, are highly attractive alternatives to noble metal catalysts for oxygen redox reactions (ORRs). Herein, we report LaNiO3 perovskite as an efficient ORR catalyst, where oxygen vacancies and oxygen-containing functional groups work synergistically. LaNiO3 was subjected to thermal shock in different media to introduce defects on the structural surface. Experimental results indicate that thermal shock in air creates oxygen vacancies on the catalyst surface, while thermal shock in aqueous solution increases the content of oxygen-containing functional groups (-OH) on the surface. The samples subjected to thermal shock exhibit superior ORR catalytic performance, with the limiting current density increasing from 4.2 mA cm-2 to 5.4 mA cm-2. This work provides a convenient and straightforward approach for constructing a series of materials enriched with surface defects.
Keywords:
PEROVSKITE OXIDES
CATALYST
ELECTROCATALYSTS
ELECTRODE
Journal
IF:
9.5
Papers:
3.3W
Citations:
21.7W
Organization
No organization information available

