Oxygen content variation and cation doping dependence of (La)1.4(Sr1-yCay)1.6Mn2O7 (y = 0, 0.25, 0.5) bilayered manganites properties
Lorenzo Malavasi, Maria Cristina Mozzati, Cristina Tealdi, Carlo B., Azzoni, and Giorgio Flor

TL;DR
This study investigates how oxygen content and cation doping with calcium influence the structural, electronic, and magnetic properties of bilayered manganites (La)1.4(Sr1-yCay)1.6Mn2O7, revealing effects on phase transitions, resistivity, and magnetization.
Contribution
It provides a detailed analysis of the combined effects of cation substitution and oxygen content variation on bilayered manganites' properties, which was not comprehensively studied before.
Findings
Oxygen annealing increases Mn valence and induces structural transition from tetragonal to orthorhombic.
Calcium doping reduces Jahn-Teller distortion and enhances transport properties.
Oxygen over-stoichiometry raises metal-insulator transition temperatures and lowers resistivity.
Abstract
The results of the synthesis and characterization of the optimally doped (La)1.4(Sr1-yCay)1.6Mn2O7 solid solution with y=0, 0.25 and 0.5 are reported. By progressively replacing the Sr with the smaller Ca, while keeping fixed the hole-concentration due to the divalent dopant, the 'size effect' of the cation itself on the structural, transport and magnetic properties of the bilayered manganite has been analysed. Two different annealing treatments of the solid solution, in pure oxygen and in pure argon, allowed also to study the effect of the oxygen content variation. Structure and electronic properties of the samples have been investigated by means of X-ray powder diffraction and X-ray absorption spectroscopy measurements. Magnetoresistivity and static magnetization measurements have been carried out to complete the samples characterization. Oxygen annealing of the solid solution, that…
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