Transport Properties of the One Dimensional Ferromagnetic Kondo Lattice Model : A Qualitative Approach to Oxide Manganites
arXiv:cond-mat/9809309 · doi:10.1103/PhysRevB.59.529
Abstract
The transport properties of the ferromagnetic Kondo lattice model in one dimension are studied via bosonization methods. The antiferromagnetic fluctuations, which normally appear because of the RKKY interactions, are explicitly taken into account as a direct exchange between the ``core'' spins. It is shown that in the paramagnetic regime with the local antiferromagnetic fluctuations, the resistivity decays exponentially as the temperature increases while in the ferromagnetic regime the system is an almost perfect conductor. %A non-perturbative description of localized spin polarons %in the paramagnetic region is obtained. The effect of a weak applied field is discussed to be reduced to the case of the ferromagnetic state leading to band splitting. The qualitative relevance of the results for the problem of the Oxide Manganites is emphasized.
4 pages, REVTex
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Cited by in corpus (6)
- Colossal Magnetoresistant Materials: The Key Role of Phase Separation
- Orbital ordering phenomena in - and -electron systems
- Resonant electron transmission through a finite quantum spin chain
- Critical Ising modes in low-dimensional Kondo insulators
- Heavy electrons from Hund's rule and short-range Antiferromagnetism
- A theory of resistivity in Kondo lattice materials: the memory function approach