Issue 3, 2019

Influence of magnetic field on electrical and thermal transport in the hole doped ferromagnetic manganite: La0.9Na0.1MnO3

Abstract

We report the magnetization (M), magnetostriction, electrical resistivity (ρ), thermal conductivity (κ) and thermopower (S) of polycrystalline La0.9Na0.1MnO3 over a wide temperature range of 5 to 360 K. This sample undergoes a paramagnetic to ferromagnetic transition around TC = 274 K and electrical resistivity ρ shows an insulator–metal transition around TIM = 292 K. The sign of thermopower S is positive in the entire temperature range which indicates that majority charge carriers are holes. Thermopower exhibits a peak and thermal conductivity shows a dip at TC in the absence of magnetic field. Large difference between the experimentally determined activation energies of ρ and S in the insulating state indicates small polaron hopping dominant conduction above TIM. Polaron formation above TC, was further confirmed from the anomaly observed in thermal expansion (ΔL/L0) which shows a change in slope at TIM. In the vicinity of TC at 3 T applied field, magneto-thermopower (∼61.5%) is larger than magnetothermal conductivity (∼12.7%) and magnetoresistance (∼49%).

Graphical abstract: Influence of magnetic field on electrical and thermal transport in the hole doped ferromagnetic manganite: La0.9Na0.1MnO3

Article information

Article type
Paper
Submitted
20 Oct 2018
Accepted
07 Jan 2019
First published
14 Jan 2019
This article is Open Access
Creative Commons BY-NC license

RSC Adv., 2019,9, 1726-1733

Influence of magnetic field on electrical and thermal transport in the hole doped ferromagnetic manganite: La0.9Na0.1MnO3

R. Das, A. Chanda and R. Mahendiran, RSC Adv., 2019, 9, 1726 DOI: 10.1039/C8RA08694J

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