Sol–Gel Synthesis and Characterizations for La0.7Ca0.15Pb0.15CoO3 Perovskite Cobaltite for Optical and Magnetic Applications

被引:0
|
作者
Raihane Charguia
Fawzah Al Shammari
Sobhi Hcini
Bandar Alzahrani
Noura Kouki
Taha Guerfel
Mohamed Lamjed Bouazizi
J. Khelifi
机构
[1] Qassim University,Department of Physics, College of Science
[2] University of Tunis El Manar,Condensed Matter Physics Laboratory, Department of Physics, Faculty of Science of Tunis
[3] Qassim University,Department of Physics, College of Science and Arts
[4] University of Kairouan,Faculty of Science and Technology of Sidi Bouzid, University Campus Agricultural City
[5] Prince Sattam Bin Abdulaziz University,College of Engineering
[6] Qassim University,Department of Chemistry, College of Science
[7] Technopole of Borj Cedria (CERTE),Laboratory of Water, Membranes, and Environment Biotechnology (EMBE)
[8] University of Kairouan,Preparatory Institute for Engineering Studies of Kairouan, Research Unit: Electrochemistry Materials and Environment
[9] Uinversity of Gabes,Higher Institute of Applied Sciences and Technology of Gabes ISSAT
来源
Journal of Low Temperature Physics | 2022年 / 209卷
关键词
Perovskite cobaltite; Sol–gel technique; TGA; Microstructural analysis; Optical properties; Magnetic properties;
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中图分类号
学科分类号
摘要
The thermal, microstructural, optical, and magnetic properties of La0.7Ca0.15Pb0.15CoO3 (abbreviated as LCPCO) cobaltite perovskite synthesized via sol–gel technique were investigated in this study. The TGA study reveals the completion of the crystallization pathway and the immediate formation of the sample. The obtained X-ray diffractogram with Rietveld refinement shows that the sample crystallizes in the rhombohedral structure with R3¯c\documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}$$R\overline{3}c$$\end{document} space group. Homogeneous particle distribution was observed from the SEM micrograph. From FTIR spectrum, LCPCO presents two absorption bands around ν1 = 415 cm−1 and ν2 = 574 cm−1 which are assigned to the O–Co–O bending vibration from the CoO6 octahedra in LaCoO3 perovskite, and Co–O stretching vibration, respectively. The UV–Vis absorbance spectrum reveals a remarkable visible-light absorption of the prepared sample with significantly lower band gap energy (Egd = 1.549 eV). Additionally, significantly lower coercivity was observed, making the LCPCO perovskite cobaltite a promising candidate for recording media.
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页码:182 / 197
页数:15
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