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ZrO₂含量对用于中温固体氧化物燃料电池阴极的La₁₋ₓZrₓCo₁₋ₙMnₙO₃钙钛矿的机械、电学和微观结构特性的影响。

Influence of ZrO2 content on the mechanical, electrical, and microstructural characteristics of La1-xZrxCo1-yMnyO3 perovskites for IT-SOFC cathodes.

作者信息

Daud Md Abu, Ahmed Robel, Islam Md Nurul, Hassan Parvez Md Mahadi, Islam Md Shofiqul, Gafur M A, Ahmed Aninda Nafis

机构信息

Bangladesh Army University of Science and Technology (BAUST), Department of Mechanical Engineering, Saidpur Cantonment, Saidpur, Nilphamari, Bangladesh.

Rajshahi University of Engineering & Technology (RUET), Department of Mechanical Engineering, Rajshahi, Bangladesh.

出版信息

PLoS One. 2025 Jun 4;20(6):e0320562. doi: 10.1371/journal.pone.0320562. eCollection 2025.

Abstract

In this research, the doping effects of ZrO2 and MnO2 on La1-xZrxCo1-yMnyO3 cathode were investigated in terms of physical, mechanical and electrical properties. The amount of ZrO2 was varied by 5wt%, 10wt%, and 15wt% for different compositions of the composites and MnO2 was varied accordingly. The composite cathode is prepared to enhance the structural and functional properties of La1-xZrxCo1-yMnyO3 composites by varying ZrO2 doping levels, optimizing their suitability for high-performance applications through detailed material characterization in powder and pellet form, followed by calcination at 1000°C and sintering at 1200°C. The final sintered composites were then examined by SEM-EDX, XRD, and AFM. Investigations were also conducted on density, porosity, compressive strength, thermal expansion coefficient (TEC), electronic conductivity, and diametral tensile strength (DTS). SEM and EDX shows both imaging and chemical analysis of the composites which indicates the results of reactions during sintering. XRD indicates that significant structural change had been taken place with the addition of ZrO2. These defects in perovskite structure will increase the ionic and electronic conductivity of the composites. The highest value of DTS, compressive strength was obtained for 15LZCM sample and lowest value of DTS, and compressive strength was observed for the 5LZCM sample. Some properties like microhardness, thermal expansion, and electrical conductivity were also determined. XRD analysis shows ZrO2 doping caused transformation of the perovskite structure and the leading crystal system was monoclinic (P 1 21/c1). SEM shows the porous microstructure of the perovskite oxide. AFM reveals the addition of the ZrO2 decreasing roughness; the rms roughness of 5LZCM was 61.46 nm but the rms roughness was 37.12 nm for 15LZCM.

摘要

在本研究中,从物理、机械和电学性能方面研究了ZrO₂和MnO₂对La₁₋ₓZrₓCo₁₋ₙMnₙO₃阴极的掺杂效应。对于不同组成的复合材料,ZrO₂的含量按5wt%、10wt%和15wt%变化,MnO₂也相应变化。通过改变ZrO₂掺杂水平来制备复合阴极,以增强La₁₋ₓZrₓCo₁₋ₙMnₙO₃复合材料的结构和功能特性,通过对粉末和颗粒形式的材料进行详细表征来优化其在高性能应用中的适用性,随后在1000°C下煅烧并在1200°C下烧结。然后通过扫描电子显微镜-能谱仪(SEM-EDX)、X射线衍射仪(XRD)和原子力显微镜(AFM)对最终烧结的复合材料进行检测。还对密度、孔隙率、抗压强度、热膨胀系数(TEC)、电子电导率和径向拉伸强度(DTS)进行了研究。SEM和EDX显示了复合材料的成像和化学分析,这表明了烧结过程中的反应结果。XRD表明,添加ZrO₂后发生了显著的结构变化。钙钛矿结构中的这些缺陷将增加复合材料的离子和电子电导率。15LZCM样品的DTS和抗压强度最高,而5LZCM样品的DTS和抗压强度最低。还测定了一些性能,如显微硬度、热膨胀和电导率。XRD分析表明,ZrO₂掺杂导致钙钛矿结构转变,主要晶体系统为单斜晶系(P 1 21/c1)。SEM显示了钙钛矿氧化物的多孔微观结构。AFM显示添加ZrO₂降低了粗糙度;5LZCM的均方根粗糙度为61.46nm,但15LZCM的均方根粗糙度为37.12nm。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7b01/12136471/1421336f7cfb/pone.0320562.g001.jpg

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