Gayathri, N and Raychaudhuri, AK and Tiwary, SK (1997) Electrical transport, magnetism, and magnetoresistance in ferromagnetic oxides with mixed exchange interactions: A study of the $La_{0.7}Ca_{0.3}Mn_{1-x}Co_xO_3$ system. In: Physical Review B, 56 (3). pp. 1345-1353.
PDF
Electrical_transport,-294.pdf Restricted to Registered users only Download (207kB) | Request a copy |
Abstract
In this paper we report the results of an extensive investigation of the $La_{0.7}Ca_{0.3}Mn_{1-x}Co_xO_3$ system. Substitution of Mn by Co dilutes the double-exchange (DE) mechanism and changes the long range ferromagnetic order of $La_{0.7}Ca_{0.3}MnO_3$ to a cluster glass-type ferromagnetic (FM) order similar to that observed in $La_{0.7}Ca_{0.3}CoO_3$. This happens even for the lowest Co substitution of x50.05 and persists over the entire composition range studied $(0.05\leqx\leq0.5)$. The Co substitution also destroys the metallic state and the resistivity increases by orders of magnitude even with a very small extent of Co substitution. The charge localization due to Co substitution is likely to have its origin in polaronic lattice distortion. The Co substitution also suppresses the colossal magnetoresistance (CMR) of the pure manganate (x = 0) over the entire temperature and composition range and it becomes very small for $x\geq0.2$. We conclude that the DE interaction and the resulting metallic state is very ‘‘fragile’’ and hence even a small amount of Co substitution can destroy the FM order, the metallic state, and the CMR.
Item Type: | Journal Article |
---|---|
Publication: | Physical Review B |
Publisher: | American Physical Society |
Additional Information: | Copyright of this article belongs to American Physical Society. |
Department/Centre: | Division of Chemical Sciences > Solid State & Structural Chemistry Unit Division of Physical & Mathematical Sciences > Physics |
Date Deposited: | 22 Feb 2007 |
Last Modified: | 19 Sep 2010 04:35 |
URI: | http://eprints.iisc.ac.in/id/eprint/9994 |
Actions (login required)
View Item |