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用于固体氧化物燃料电池的Pr取代的SrFeO对称电极中热膨胀的降低及电化学性能的改善

Reduced Thermal Expansion and Improved Electrochemical Performance in Pr-Substituted SrFeO as Symmetrical Electrode for Solid Oxide Fuel Cells.

作者信息

Sánchez-Caballero Abraham, Zamudio-García Javier, Dos Santos-Gómez Lucía, da Silva Iván, Pérez-Coll Domingo, Porras-Vázquez José M, Marrero-López David

机构信息

Dpto. de Química Inorgánica, Cristalografía y Mineralogía, Universidad de Málaga, Malaga 29071, Spain.

Instituto Universitario de Materiales y Nanotecnología, IMANA, Universidad de Málaga, Campus de Teatinos, Málaga 29071, Spain.

出版信息

ACS Appl Mater Interfaces. 2025 Apr 9;17(14):21380-21391. doi: 10.1021/acsami.4c21980. Epub 2025 Mar 27.

Abstract

Advances in doping strategies have significantly improved the properties of SrFeO-based electrodes. However, challenges such as high thermal expansion coefficients and limited redox stability remain critical issues that require further investigation. This study focuses on the optimization of (SrPr)FeO (0 < ≤ 1) series, evaluating the effects of praseodymium content on thermal expansion, redox stability, and electrochemical performance for potential application as both air and fuel electrodes in symmetrical solid oxide fuel cells. Rietveld refinements of X-ray and neutron diffraction data reveal a phase transformation from tetragonal to cubic symmetry with Pr content (0.2 ≤ ≤ 0.4), followed by a transition to orthorhombic symmetry ( ≥ 0.6). Thermogravimetric and dilatometric analyses demonstrate that higher Pr content effectively reduces both oxygen nonstoichiometry and the thermal expansion coefficients, which decrease from 31 × 10 K for = 0.2 to 8.4 × 10 K for = 1. Meanwhile the electrical conductivity remains relatively unaffected by the Pr-content up to = 0.8, reaching values as high as 116 S cm at 700 °C in air. Additionally, the electrode polarization resistances are relatively low across the series, e.g. 0.11 Ω cm in air and 0.09 Ω cm in H for = 0.6 at 700 °C, while exhibiting excellent redox cycling stability. These findings indicate that (SrPr)FeO ( ≥ 0.6) materials are promising electrodes, offering tunable thermal expansion and electrochemical properties for reliable performance in both oxidizing and reducing environments.

摘要

掺杂策略的进步显著改善了基于SrFeO的电极的性能。然而,诸如高热膨胀系数和有限的氧化还原稳定性等挑战仍然是需要进一步研究的关键问题。本研究聚焦于(SrPr)FeO(0 < ≤ 1)系列的优化,评估镨含量对热膨胀、氧化还原稳定性以及电化学性能的影响,以潜在应用于对称固体氧化物燃料电池中的空气电极和燃料电极。对X射线和中子衍射数据进行的Rietveld精修揭示,随着Pr含量(0.2 ≤ ≤ 0.4),会发生从四方对称到立方对称的相变,随后转变为正交对称( ≥ 0.6)。热重分析和膨胀分析表明,较高的Pr含量有效地降低了氧非化学计量比和热膨胀系数,热膨胀系数从 = 0.2时的31×10⁻⁶ K⁻¹降至 = 1时的8.4×10⁻⁶ K⁻¹。同时,在 = 0.8之前,电导率相对不受Pr含量的影响,在700 °C空气中达到高达116 S cm⁻¹的值。此外,该系列电极的极化电阻相对较低,例如在700 °C时,对于 = 0.6,在空气中为0.11 Ω cm²,在氢气中为0.09 Ω cm²,同时表现出优异的氧化还原循环稳定性。这些发现表明,(SrPr)FeO( ≥ 0.6)材料是很有前景的电极,具有可调节的热膨胀和电化学性能,能够在氧化和还原环境中实现可靠的性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b7e1/12128030/e17b9d4e5e84/am4c21980_0001.jpg

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