Electrical transport properties of nanostructured ferromagnetic perovskite oxides La_0.67Ca_0.33MnO_3 and La_0.5Sr_0.5CoO_3 at low temperatures (5 K > T >0.3 K) and high magnetic field
Tapati Sarkar, M. Venkata Kamalakar, A. K. Raychaudhuri

TL;DR
This study investigates the low-temperature electrical and magneto-transport properties of nanostructured La_0.67Ca_0.33MnO_3 and La_0.5Sr_0.5CoO_3, revealing tunnelling mechanisms, spin polarization effects, and Coulomb blockade phenomena in nanocrystals under high magnetic fields.
Contribution
It provides a detailed analysis of tunnelling and magnetotransport in nanocrystals, highlighting the role of spin polarization and Coulomb blockade at very low temperatures.
Findings
Tunnelling parameters depend on magnetic field and temperature.
Distinct MR contributions are identified at low and high fields.
A Coulomb gap appears at the lowest temperatures and small sizes.
Abstract
We report a comprehensive study of the electrical and magneto-transport properties of nanocrystals of La_0.67Ca_0.33MnO_3 (LCMO) (with size down to 15 nm) and La_0.5Sr_0.5CoO_3 (LSCO) (with size down to 35 nm) in the temperature range 0.3 K to 5 K and magnetic fields upto 14 T. The transport, magnetotransport and non-linear conduction (I-V curves) were analysed using the concept of Spin Polarized Tunnelling in the presence of Coulomb blockade. The activation energy of transport, \Delta, was used to estimate the tunnelling distances and the inverse decay length of the tunnelling wave function (\chi) and the height of the tunnelling barrier (\Phi_B). The magnetotransport data were used to find out the magnetic field dependences of these tunnelling parameters. The data taken over a large magnetic field range allowed us to separate out the MR contributions at low temperatures arising from…
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