| Literature DB >> 26762264 |
S M Konoplyuk1, L E Kozlova2, V V Kokorin2, A O Perekos3, O V Kolomiets4.
Abstract
Two Cu-Mn-Al samples of different compositions were studied: one exhibiting martensitic transformation, another without structural transition. X-ray diffraction and magnetic measurements demonstrate that different magnetic behaviors of alloys originate from different concentrations and sizes of ferromagnetic nanoparticles, which appear after solid solution decomposition.Estimation of magnetic moments of ferromagnetic nanoparticles from magnetization curves was performed using Langevin function and compared to those obtained from X-ray examination. Granular systems are known to show giant magnetoresistance. Therefore, magnetoresistance of Cu-Mn-Al melt-spun ribbons after different aging times was measured. The study has shown that increase in the concentration of Mn atoms and time of aging in Cu-Mn-Al alloy leads to an increase in the amount of precipitated phase appearing as ferromagnetic nanoparticles.Entities:
Keywords: Cu-Mn-Al; Granular system; Magnetoresistance; Superparamagnetism
Year: 2016 PMID: 26762264 PMCID: PMC4712180 DOI: 10.1186/s11671-016-1233-z
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1XRD scan: a Cu-5 % Mn-23.4 % Al (CuKα radiation) and b Cu-7 % Mn-26 % Al (CoKα radiation) alloys near the (400) reflection. Δθ 1 angular inter-satellite spacing, Δθ 2 angular width of (400) reflection with satellites
Fig. 2The temperature dependence of ZFC and FC magnetizations for the as-spun Cu-5 % Mn-23.4 % Al alloy in the field of 50 Oe
Fig. 3The temperature dependence of ZFC and FC magnetizations for the as-spun and aged Cu-7 % Mn-26 % Al alloys in the field of 50 Oe
Fig. 4The magnetization as a function of magnetic field for the as-spun and aged Cu-7 % Mn-26 % Al alloys. Solid lines are Langevin fittings to magnetization data
Fig. 5Magnetoresistance at room temperature as a function of annealing time for Cu-7 % Mn-26 % Al alloy