Structure, magnetic and transport properties of Ti-substituted La0.7Sr0.3MnO3
M. S. Kim (1, 2), J. B. Yang (1, 2), Q. Cai (3), X. D. Zhou (2), W. J., James (2,4), W. B. Yelon (2, 4), P. E. Parris (1), D. Buddhikot (5), S. K., Malik (5) ((1) Department of Physics, University of Missouri-Rolla, Rolla,, USA (2) Graduate Center for Materials Research

TL;DR
This study investigates how Ti substitution affects the structural, magnetic, and transport properties of La0.7Sr0.3MnO3, revealing changes in crystal structure, magnetic transition temperature, resistivity behavior, and magnetoresistance with increasing Ti content.
Contribution
It provides detailed insights into the effects of Ti doping on the physical properties of La0.7Sr0.3MnO3, including structural modifications and enhanced magnetoresistance, which were not previously characterized comprehensively.
Findings
All samples maintain rhombohedral structure from 10 K to room temperature.
Maximum magnetoresistance of about 70% observed at x=0.2.
Ti substitution shifts T_C to lower temperatures and increases resistivity.
Abstract
Ti-substituted perovskites, La0.7Sr0.3Mn1-xTixO3, with x between 0 to 0.20, were investigated by neutron diffraction, magnetization, electric resistivity, and magnetoresistance (MR) measurements. All samples show a rhombohedral structure (space group R3c) from 10 K to room temperature. At room temperature, the cell parameters a, c and the unit cell volume increase with increasing Ti content. However, at 10 K, the cell parameter a has a maximum value for x = 0.10, and decreases for x greater than 0.10, while the unit cell volume remains nearly constant for x greater than 0.10. The average (Mn,Ti)-O bond length increases up to x=0.15, and the (Mn,Ti)-O-(Mn,Ti) bond angle decreases with increasing Ti content to its minimum value at x=0.15 at room temperature. Below the Curie temperature T_C, the resistance exhibits metallic behavior for the x _ 0.05 samples. A metal (semiconductor) to…
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