Study of Short-distance Spin and Charge Correlations and Local Density-of-States in the CMR regime of the One-Orbital Model for Manganites
Rong Yu, Shuai Dong, Cengiz Sen, Gonzalo Alvarez, Elbio Dagotto

TL;DR
This study uses Monte Carlo simulations to explore the interplay of spin, charge, and lattice effects in manganites, revealing inhomogeneous states and pseudogaps that relate to colossal magnetoresistance phenomena.
Contribution
It provides new insights into the dynamic inhomogeneity and pseudogap formation in the CMR regime of manganites, connecting theoretical results with experimental observations.
Findings
Competition between ferromagnetic metallic and antiferromagnetic insulating states
Existence of a pseudogap in the local density of states
System exhibits glassy, inhomogeneous charge and spin correlations
Abstract
The metal-insulator transition, and the associated magnetic transition, in the colossal magnetoresistance (CMR) regime of the one-orbital model for manganites is here studied using Monte Carlo (MC) techniques. Both cooperative oxygen lattice distortions and a finite superexchange coupling among the spins are included in our investigations. Charge and spin correlations are studied. In the CMR regime, a strong competition between the ferromagnetic metallic and antiferromagnetic charge-ordered insulating states is observed. This competition is shown to be important to understand the resistivity peak that appears near the critical temperature. Moreover, it is argued that the system is dynamically inhomogeneous, with short-range charge and spin correlations that slowly evolve with MC time, producing the glassy characteristics of the CMR state. The local density-of-states (LDOS)…
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Taxonomy
TopicsMagnetic and transport properties of perovskites and related materials · Electronic and Structural Properties of Oxides · Advanced Condensed Matter Physics
