Title :
Neutron diffraction and Mossbauer studies of the La0.67Ba0.33Mn0.9957Fe0.01O3
Author :
Choi, Kang Ryong ; Kim, Sam Jin ; Shim, In-Bo ; Lee, Bo Wha ; Kim, Chul Sung
Author_Institution :
Dept. of Phys., Kookmin Univ., Seoul, South Korea
Abstract :
The perovskite La0.67Ba0.33Mn0.9957Fe0.01O3 compound was prepared by wet chemical solution process at 1200°C for 3 h. Magnetic properties of La0.67Ba0.33Mn0.9957Fe0.01O3 were studied using X-ray diffraction, Rutherford backscattering spectroscopy (RBS), neutron diffraction, Mossbauer spectroscopy, vibrating sample magnetometry, and magnetoresistance measurements. The polycrystalline La0.67Ba0.33Mn0.9957Fe0.01O3 had a space group Pnma of orthorhombic perovskite structure with lattice constants a0=5.526 Å, b0=7.830 Å, and c0=5.540 Å, respectively. A chemical composition was confirmed to be stoichiometric by RBS. The maximum magnetoresistance ratio (Δρ/ρ(0)) was observed at 281 K, with a magnitude of 9.5% in 1 Tesla. The Curie temperature (TC) was determined to be 345 K. Mossbauer spectra of La0.67Ba0.33Mn0.9957Fe0.01O3 were taken at various temperatures ranging from 15 to 400 K. Below 77 K, two magnetic phases were increased and showed two sharp sextets of spectra. The magnetic hyperfine fields of outer (51%) and inner (49%) subspectrum were Hhf=530 and 480 kOe, respectively. These unusual phenomena provide direct evidence of the two-magnetic phase character of the metallic state in the mixed valence of La0.67Ba0.33Mn0.9957Fe0.01O3 powder. The outer sextet of Mossbauer spectra rapidly collapsed to paramagnetic phase with increasing temperature.
Keywords :
Curie temperature; Mossbauer effect; Rutherford backscattering; X-ray diffraction; barium compounds; colossal magnetoresistance; ferromagnetic-paramagnetic transitions; hyperfine structure; lanthanum compounds; lattice constants; magnetic structure; mixed valence compounds; neutron diffraction; 1 T; 1200 degC; 15 to 400 K; 3 h; Curie temperature; La0.67Ba0.33Mn0.99O3Fe0.01O3; Mossbauer spectra; RBS; Rutherford backscattering spectroscopy; X-ray diffraction; chemical composition; ferromagnetic-paramagnetic phase transition; lattice constants; magnetic hyperfine fields; magnetoresistance; mixed valence; neutron diffraction; two-magnetic phase character; vibrating sample magnetometry; Backscatter; Chemical compounds; Chemical processes; Iron; Magnetic properties; Magnetoresistance; Neutrons; Spectroscopy; Temperature distribution; X-ray diffraction;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2003.815717