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Insights into the magnetic dead layer in La0.7Sr0.3MnO3 thin films from temperature, magnetic field and thickness dependence of their magnetization
Author(s) -
Navid Mottaghi,
M. S. Seehra,
Robbyn Trappen,
Shalini Kumari,
Chih-Yeh Huang,
Saeed Yousefi,
G. Cabrera,
A. Romero,
Mikel B. Holcomb
Publication year - 2018
Publication title -
aip advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.421
H-Index - 58
ISSN - 2158-3226
DOI - 10.1063/1.5005913
Subject(s) - coercivity , remanence , curie temperature , magnetization , materials science , condensed matter physics , magnetic hysteresis , isothermal process , hysteresis , analytical chemistry (journal) , saturation (graph theory) , magnetic domain , nuclear magnetic resonance , magnetic field , ferromagnetism , chemistry , physics , thermodynamics , mathematics , chromatography , quantum mechanics , combinatorics
Experimental investigations of the magnetic dead layer in 7.6 nm thick film of La0.7Sr0.3MnO3 (LSMO) are reported. The dc magnetization (M) measurements for a sample cooled to T = 5 K in applied field H = 0 reveal the presence of negative remanent magnetization (NRM) in the M vs. H (magnetic field) measurements as well as in the M vs. T measurements in H = 50 Oe and 100 Oe. The M vs. T data in ZFC (zero-field-cooled) and FC (field-cooled) protocols are used to determine the blocking temperature TB in different H. Isothermal hysteresis loops at different T are used to determine the temperature dependence of saturation magnetization (MS), remanence (MR) and coercivity HC. The MS vs. T data are fit to the Bloch law, MS (T) = M0 (1 – BT 3/2), showing a good fit for T < 100 K and yielding the nearest-neighbor exchange constant J/kB ≅ 18 K. The variations of TB vs. H and HC vs. T are well described by the model often used for randomly oriented magnetic nanoparticles with magnetic domain diameter ≈ 9 nm present ...

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