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Phase separation, ferromagnetism and magnetic irreversibility in La1−xSrxMn1−yFeyO3
Authors:VS Zakhvalinskii  R LaihoAV Lashkul  KG Lisunov  E Lähderanta  YuS NekrasovaPA Petrenko
Institution:a Department of Mathematics and Physics, Lappeenranta University of Technology, PO Box 20, FIN-53851 Lappeenranta, Finland
b Department of Physics, Belgorod State University, RUS-308015 Belgorod, Russia
c Wihuri Physical Laboratory, University of Turku, FIN-20014 Turku, Finland
d Institute of Applied Physics ASM, Academiei Str. 5, MD-2028 Kishinev, Moldova
Abstract:Magnetic susceptibility, χ(T), is investigated in ceramic La1−xSrxMn1−yFeyO3 (LSMFO) samples with x=0.3 and y=0.15−0.25. A ferromagnetic (FM) transition observed in LSMFO is accompanied with an appreciable decrease of the transition temperature with increasing y, which is connected to breaking of the FM double-exchange interaction by doping with Fe. Strong magnetic irreversibility, observed in low (B=10 G) field, gives evidence for frustration of the magnetic state of LSMFO. The FM transition, which is expanded with increasing B, is more pronounced in the samples with y=0.15-0.20 and broadens considerably at y=0.25, where the irreversibility is increased. Well above the transition, χ(T) exhibits a Curie-Weiss asymptotic behavior, yielding very large values of the effective Bohr magneton number per magnetic ion, incompatible with those of Mn or Fe single ions. At y=0.15 and 0.20 a critical behavior of χ−1(T)∼(T/TC−1)γ in the region of the FM transition is characterized by influence of two different magnetic systems, a 3D percolative one with γ=γp≈1.8 and TC=TC(p), and a non-percolative 3D Heisenberg spin system, with γ=γH≈1.4 and TC=TC(H), where TC(p)<TC(H). At y=0.25 the percolative contribution to the critical behavior of χ(T) is not observed. The dependence of χ on T and y gives evidence for phase separation, with onset already near the room temperature, leading to generation of nanosize FM particles in the paramagnetic host matrix of LSMFO. The ferromagnetism of LSMFO is attributable to percolation over the system of such particles and generation of large FM clusters, whereas the frustration is governed presumably by a system of smaller weakly-correlated magnetic units, which do not enter the percolative FM clusters.
Keywords:Manganite  Magnetic phase transition  Magnetic critical point effect
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