A-site Pb doping effect on structural, microstructural and magnetotransport properties of La0.5Sm0.2Ca0.3-xPbxMnO3 (x=0, 0.05, 0.10) manganite

Structural, microstructural and magneto-transport properties of polycrystalline La0.5Sm0.2Ca0.3-x PbxMnO3 (x = 0, 0.05 and 0.10) samples, prepared by conventional solid state reaction, were studied. Refinement of the Powder X-ray diffractograms revealed that all the samples crystallize into orthorho...

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Veröffentlicht in:Materials chemistry and physics 2021-07, Vol.267, p.124550, Article 124550
Hauptverfasser: Denbri, Fatih, Mahamdioua, Nabil, Meriche, Faiza, Koc, Nevin Soylu, Terzioglu, Cabir, Varilci, Ahmet, Altintas, Sevgi Polat
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Sprache:eng
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Zusammenfassung:Structural, microstructural and magneto-transport properties of polycrystalline La0.5Sm0.2Ca0.3-x PbxMnO3 (x = 0, 0.05 and 0.10) samples, prepared by conventional solid state reaction, were studied. Refinement of the Powder X-ray diffractograms revealed that all the samples crystallize into orthorhombic structure with Pnma space group and the lattice parameters increase with increasing Pb content. The scanning electron microscope (SEM) micrographs show a granular character and the estimated grain sizes ranges between 10 μm and 20 μm. The experimental electrical resistivity and the magnetoresistance in the temperature range 20 K–250 K under magnetic field of zero and 1 Ta, have been recorded using four probe technique. The resistivity curves without magnetic field, exhibit a ferromagnetic-metallic (FM) to paramagnetic-insulating (PI) transition at TMI = 125 K, 91 K and 37 K for x = 0, 0.05 and 0.10, respectively. The magnetoresistance reaches 58% for undoped sample and decrease with Pb doping under 1T. The resistivity values increases drastically with Pb doping. These two results were explained mainly by the increase of the disorder σ2 and . In the low temperature range (T  TMI, all our resistivity curves has been analyzed using adiabatic small polaron hopping model (ASPH) above θD/2 and variable range hopping model (3D-VRH) (TMI 
ISSN:0254-0584
1879-3312
DOI:10.1016/j.matchemphys.2021.124550