Effect of Li substitution on the crystal structure and magnetoresistance of LaMnO3

Citation
Sl. Ye et al., Effect of Li substitution on the crystal structure and magnetoresistance of LaMnO3, J APPL PHYS, 88(10), 2000, pp. 5915-5919
Citations number
30
Categorie Soggetti
Apllied Physucs/Condensed Matter/Materiales Science
Journal title
JOURNAL OF APPLIED PHYSICS
ISSN journal
00218979 → ACNP
Volume
88
Issue
10
Year of publication
2000
Pages
5915 - 5919
Database
ISI
SICI code
0021-8979(20001115)88:10<5915:EOLSOT>2.0.ZU;2-D
Abstract
The crystal structure and magnetoresistance of the polycrystalline La1-xLix MnO3 (x=0.10, 0.15, 0.20, 0.30) are investigated. The result of the Rietvel d refinement of x-ray powder diffraction shows that the room temperature st ructural transition from rhombohedral (R (3) over barC) to orthorhombic (Pb nm) symmetry occurs at the Li-doped level x greater than or equal to0.2. Ac companying the occurrence of the structural transition, the lattice distort ion and the bending of the Mn-O-Mn bond increase and the ferromagnetic tran sition temperature T-C decreases. For x=0.10 and 0.15 samples, double metal -insulator (M-I) transitions accompanying a single ferromagnetic transition and a negative magnetoresistance as high as 26% in a magnetic field of 0.8 T are observed. For x=0.20 and 0.30, the samples manifest nonmetallic beha vior throughout the measured temperature range. We suggest that the double M-I transitions phenomena of low Li-doped samples originate from the magnet ic inhomogeneity due to the formations of the Mn3+ and Mn4+-rich regions in duced by partial substitution of the monovalent Li1+ ions for the trivalent La3+ ions. The transport property of high Li-doped samples (x=0.20 and 0.3 0) can be explained according to the additional localization of e(g) electr ons induced by a static coherent Jahn-Teller distortion of the MnO6 octahed ra stemming from the structural transition from rhombohedral (R (3) over ba rC) to orthorhombic (Pbnm) and the reduced bandwidth of e(g) electrons due to the increased bending of the Mn-O-Mn bond. (C) 2000 American Institute o f Physics. [S0021-8979(00)04423-6].