Design of multi-doped strontium ferrate perovskite-based electrocatalysts with medium-entropy and reduced content of critical elements

兴奋剂 钙钛矿(结构) 材料科学 化学工程 碳酸锶 无机化学 化学 光电子学 工程类 有机化学
作者
Francesca Deganello,Marta Ippolito,Francesco Giannici,C. F. Aliotta,Leonarda Francesca Liotta,Sebastián Vecino‐Mantilla,Zahreddine Hafsi,Massimiliano Lo Faro
出处
期刊:Chemical Engineering Journal [Elsevier BV]
卷期号:520: 165946-165946 被引量:3
标识
DOI:10.1016/j.cej.2025.165946
摘要

The issue of critical raw materials and the energy crisis forces the scientific community to find alternative chemical compositions for clean energy production without compromising too much on the final materials functionality. A possible strategy is reducing the concentration of critical elements and, at the same time, increasing the entropy of the material, that has a considerable effect on most of the relevant properties of electrocatalytic materials. In this work, non-equimolar medium-entropy perovskite oxides with reduced content of critical elements and medium entropy were here proposed as sustainable oxygen electrode materials for intermediate temperature solid oxide fuel cells and solid oxide electrolysis cells devices. Five powders with nominal composition Sr 1−(a+a′) Ba a Ca a′ Fe 1−b Mo b O 3−δ (a = 0.25, 0.05, 0.075, a′ = 0.85, 0.25, 0.10, 0.075; b = 0.2, 0.5) were prepared by solution combustion synthesis and studied by powder X-ray diffraction with Rietveld refinement and by Raman spectroscopy, temperature programmed reduction, thermal gravimetric analysis, N 2 adsorption, scanning electron microscopy with energy dispersive spectroscopy and electrochemical impedance spectroscopy. Results indicate strong competition for Mo between a doped SrFeO 3 -type perovskite structure, a Sr 2 FeMoO 6 -type double perovskite structure and a doped BaMoO 4 -type tetragonal structure, whereas a predominantly single-phase SrFeO 3 -type medium-entropy perovskite oxide with reduced content of critical elements was thermodynamically stabilized by high Sr-to-Mo ratio. The best electrocatalyst, Sr 0.85 Ba 0.05 Ca 0.10 Fe 0.8 Mo 0.2 O 3 − δ , had a stable electrochemical performance, both in oxygen reduction and evolution mechanisms, according to the harmonized stress test protocols. Although calcium in the A-site generally still induces the formation of more than one phase, the oxygen reduction/evolution activity of calcium-rich sample approaches the best Sr-rich sample at 800 °C. Therefore, calcium-rich compositions may still be valid alternatives with a reasonable compromise between critical element content and performance. • Medium entropy perovskite oxides with reduced critical elements were obtained. • Good electrochemical performance and stability were proved. • A low Sr-to-Mo molar ratio favours a perovskite oxide phase with optimal activity.

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