Getting saturation magnetization of superparamagnetic nanoparticles more accurately from room-temperature magnetization curve

被引:3
作者
Eivari, Hossein Asnaashari [1 ]
机构
[1] Univ Zabol, Dept Phys, POB 98615538, Zabol, Iran
关键词
Super-paramagnetic nanoparticles; Saturation magnetization; Extrapolation; Mittag-leffler function; Magnetization curve; Fitting; COBALT FERRITE NANOPARTICLES; IRON-OXIDE NANOPARTICLES; FERROFLUIDS; BEHAVIOR; PH;
D O I
10.1007/s11051-023-05756-9
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The saturation magnetization (M-s) of a superparamagnetic (SPM) nanoparticle system is an important factor that affects the performance of nanoparticles and can reflect their other physical properties. In this work, we make a comparison between two functions that can be used to extrapolate the room temperature curve of magnetization versus the inverse magnetic field (M - 1/H curve) to get saturation magnetization. The functions are the common linear function and the Mittag-Leffler function. Simulated M - 1/H curves of various systems of SPM nanoparticles were fitted to the functions, and extrapolated M-s was obtained. For each fitting procedure, the average absolute deviations (AADs) were calculated. The systems include core-shell iron-oxide nanoparticles with mono-disperse, multi-disperse, log-normal, and bi-log-normal size distributions. The used magnetization fields were up to 20 kOe. The results showed that for each function and each system, the extrapolated M-s depends on the number of points of the M - 1/H curve used in the fitting procedure. However, there are characteristic marks on the diagrams of M-s and AAD versus the number of points from which the correct value of M-s can be determined. Moreover, for mono-disperse systems with 3nm nanoparticles, the linear function leads to a better result for extrapolated M-s than the Mittag-Leffler function. However, for log-normal and bi-log-normal with broad size distributions, the results of the Mittag-Leffler function are better. In the other cases, investigated here, both functions lead to similar and reasonable results. Exploration of M-s was also performed for eight samples of iron-oxide nanoparticles that were synthesized by the co-precipitation method. The obtained results from the two functions were compared. The correct value of M-s for each sample was determined according to the characteristic mark on the M-s and AAD curves versus the number of points. According to the results of this work, we suggest using both functions together to determine the saturation magnetization of magnetic nanoparticles in practical cases.
引用
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页数:13
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共 32 条
  • [1] Synthesis of ferrofluids based on cobalt ferrite nanoparticles: Influence of reaction time on structural, morphological and magnetic properties
    Amirabadizadeh, Ahmad
    Salighe, Zohre
    Sarhaddi, Reza
    Lotfollahi, Zahra
    [J]. JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2017, 434 : 78 - 85
  • [2] Applying a suitable route for preparation Fe3O4 nanoparticles by Ammonia and investigation of their physical and different magnetic properties
    Arabi, H.
    Eivari, H. Asnaashari
    [J]. INTERNATIONAL JOURNAL OF NANO DIMENSION, 2014, 5 (03) : 297 - 303
  • [3] Arabi H, 2014, APPLYING SUITABLE RO
  • [4] Design of thermosensitive polymer-coated magnetic mesoporous silica nanocomposites with a core-shell-shell structure as a magnetic/temperature dual-responsive drug delivery vehicle
    Asgari, Mahsa
    Soleymani, Meysam
    Miri, Taghi
    Barati, Aboulfazl
    [J]. POLYMERS FOR ADVANCED TECHNOLOGIES, 2021, 32 (10) : 4101 - 4109
  • [5] Distribution functions of magnetic nanoparticles determined by a numerical inversion method
    Bender, P.
    Balceris, C.
    Ludwig, F.
    Posth, O.
    Bogart, L. K.
    Szczerba, W.
    Castro, A.
    Nilsson, L.
    Costo, R.
    Gavilan, H.
    Gonzalez-Alonso, D.
    de Pedro, I.
    Fernandez Barquin, L.
    Johansson, C.
    [J]. NEW JOURNAL OF PHYSICS, 2017, 19
  • [6] MAGNETIC SIZE DETERMINATION FOR INTERACTING FINE PARTICLE-SYSTEMS
    BRADBURY, A
    MENEAR, S
    OGRADY, K
    CHANTRELL, RW
    [J]. IEEE TRANSACTIONS ON MAGNETICS, 1984, 20 (05) : 1846 - 1848
  • [7] Portable, one-step, and rapid GMR biosensor platform with smartphone interface
    Choi, Joohong
    Gani, Adi Wijaya
    Bechstein, Daniel J. B.
    Lee, Jung-Rok
    Utz, Paul J.
    Wang, Shan X.
    [J]. BIOSENSORS & BIOELECTRONICS, 2016, 85 : 1 - 7
  • [8] High-saturation magnetization in small nanoparticles of Fe3O4 coated with natural oils
    Correa, Bruno S.
    Costa, Messias S.
    Cabrera-Pasca, Gabriel A.
    Sena, Cleidilane
    Pinto, Rafael H.
    Silva, Ana Paula S.
    Carvalho Junior, Raul N.
    Ishida, Lina
    Ramon, Jonathan G. A.
    Freitas, Rafael S.
    Saiki, Mitiko
    Matos, Izabela T.
    Correa, Eduardo L.
    Carbonari, Artur W.
    [J]. JOURNAL OF NANOPARTICLE RESEARCH, 2020, 22 (03)
  • [9] Cullity B. D., 2011, Introduction to magnetic materials, V2nd
  • [10] Eivari H.A., 2013, World Applied Programming, V3, P52