Colossal Magnetoresistance Observed in Monte Carlo Simulations of the One- and Two-Orbital Models for Manganites
C. \c{S}en, G. Alvarez, H. Aliaga, E. Dagotto

TL;DR
This paper uses Monte Carlo simulations of one- and two-orbital models for manganites to analyze charge transport and magnetoresistance, revealing peaks in resistivity and effects similar to experimental colossal magnetoresistance phenomena.
Contribution
It extends previous studies by analyzing both one- and two-orbital models, demonstrating large resistivity peaks and magnetoresistance effects consistent with experimental observations.
Findings
Resistivity peaks at Curie temperature in both models
Magnetoresistance factors are large and align with experiments
Quenched disorder enhances colossal magnetoresistance effects
Abstract
The one- and two-orbital double-exchange models for manganites are studied using Monte Carlo computational techniques in the presence of a robust electron-phonon coupling (but neglecting the antiferromagnetic exchange between the localized spins). The focus in this effort is on the analysis of charge transport. Our results for the one-orbital case confirm and extend previous recent investigations that showed the presence of robust peaks in the resistivity vs. temperature curves for this model. Quenched disorder substantially enhances the magnitude of the effect, while magnetic fields drastically reduce the resistivity. A simple picture for the origin of these results is presented. It is also shown that even for the case of just one electron, the resistance curves present metallic and insulating regions by varying the temperature, as it occurs at finite electronic density.…
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