Effect of Mg doping on the electrical, dielectric and relaxation properties of LiMnPO4 nanoparticles

被引:0
|
作者
B. Nageswara Rao
D. Narsimulu
N. Satyanarayana
机构
[1] Vignan’s Foundation for Science Technology and Research University,Division of Physics, Department of S&H
[2] Institute for Wearable Convergence Electronics,Department of Electronic Engineering
[3] Kyung Hee University,Department of Physics
[4] Pondicherry University,undefined
来源
Indian Journal of Physics | 2022年 / 96卷
关键词
Mg-doped LiMnPO; Scanning electron microscope (SEM); Electrical conductivity; Dielectric studies; Relaxation studies;
D O I
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中图分类号
学科分类号
摘要
LiMnPO4 and LiMn0.9Mg0.1PO4 nanostructures were synthesized by a rapid microwave-assisted solvothermal method. Powder X-ray diffraction (XRD) studies confirmed the orthorhombic crystal structure of LiMnPO4 and LiMn0.9Mg0.1PO4 nanostructures. It is also noticed that the Mg2+ ions doping into manganese sites did not affect the crystal structure of LiMnPO4. The scanning electron microscope (SEM) micrographs of LiMnPO4 and LiMn0.9Mg0.1PO4 showed the formation of nanoparticles with mixed morphology, i.e., spherical particle morphology and one-dimensional nanorod morphology. The LiMn0.9Mg0.1PO4 nanoparticles exhibited an improved electrical properties compared to that of LiMnPO4 nanoparticles. At room temperature, LiMn0.9Mg0.1PO4 nanoparticles exhibited an electrical conductivity of 3.705 × 10–7 S cm−1. The dielectric constant of LiMnPO4 and LiMn0.9Mg0.1PO4 nanostructures is high at low frequencies and decreases gradually towards high frequencies. The LiMnPO4 and LiMn0.9Mg0.1PO4 nanostructures are found to exhibit non-Debye-type relaxation behavior.
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页码:1017 / 1023
页数:6
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