Agglomeration Dynamics of Magnetite Nanoparticles at Low Magnetic Field Gradient

被引:9
作者
Jin, Daeseong [1 ,2 ]
Kim, Hackjin [1 ,2 ]
机构
[1] Chungnam Natl Univ, Dept Chem, Taejeon 34134, South Korea
[2] Chungnam Natl Univ, Dept Chem, Taejeon 34134, South Korea
来源
BULLETIN OF THE KOREAN CHEMICAL SOCIETY | 2018年 / 39卷 / 06期
关键词
Magnetic nanoparticle; Agglomeration; Stretched exponential dynamics; Low field gradient; MAGNETOPHORESIS; FE3O4; SIZE;
D O I
10.1002/bkcs.11463
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Agglomeration of magnetite nanoparticles in the aqueous solution is studied at the low magnetic field gradients of 23-34 T/m by monitoring the temporal change of magnetic weight. A conventional electronic balance is used to measure the magnetic weight that is the magnetic force on the magnetic sample by the magnetic field gradient. The magnetic weight grows slowly following the stretched exponential after the instantaneous jump by the Neel and Brown relaxation. Magnetization of the magnetite nanoparticles is estimated from the magnetic weight and compared with the Langevin function. The magnetization is close to the saturation in the studied magnetic field range and the saturation magnetization of the agglomerate of nanoparticles is about 60% of that of the bulk magnetite. Kinetic parameters of the stretched exponential show little the magnetic field dependence in the investigated range. Complex energy landscape is involved in the agglomeration as the stretched exponential dynamics indicates. The half-life of the response function for the magnetic weight change suggests that the pathways of low energy barriers are activated by magnetic field at the early stage of agglomeration.
引用
收藏
页码:729 / 735
页数:7
相关论文
共 25 条
  • [1] ACTIVATION-ENERGY SPECTRUM OF A BIOMOLECULE - PHOTODISSOCIATION OF CARBONMONOXY MYOGLOBIN AT LOW-TEMPERATURES
    AUSTIN, RH
    BEESON, K
    EISENSTEIN, L
    FRAUENFELDER, H
    GUNSALUS, IC
    MARSHALL, VP
    [J]. PHYSICAL REVIEW LETTERS, 1974, 32 (08) : 403 - 405
  • [2] Supermagnetism
    Bedanta, Subhankar
    Kleemann, Wolfgang
    [J]. JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2009, 42 (01)
  • [3] Cornell R. M, 2003, IRON OXIDES
  • [4] Heating efficiency in magnetic nanoparticle hyperthermia
    Deatsch, Alison E.
    Evans, Benjamin A.
    [J]. JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2014, 354 : 163 - 172
  • [5] TABLES OF THE INVERSE LAPLACE TRANSFORM OF THE FUNCTION E-S-BETA
    DISHON, M
    BENDLER, JT
    WEISS, GH
    [J]. JOURNAL OF RESEARCH OF THE NATIONAL INSTITUTE OF STANDARDS AND TECHNOLOGY, 1990, 95 (04) : 433 - 467
  • [6] Two-stage kinetics of field-induced aggregation of medium-sized magnetic nanoparticles
    Ezzaier, H.
    Marins, J. Alves
    Razvin, I.
    Abbas, M.
    Amara, A. Ben Haj
    Zubarev, A.
    Kuzhir, P.
    [J]. JOURNAL OF CHEMICAL PHYSICS, 2017, 146 (11)
  • [7] Aqueous Superparamagnetic Magnetite Dispersions with Ultrahigh Initial Magnetic Susceptibilities
    Fei, Yunping
    Iqbal, Muhammad
    Kong, Seong D.
    Xue, Zhen
    McFadden, Charles P.
    Guillet, Jesse L.
    Doerrer, Linda H.
    Alp, Esen E.
    Bi, Wenli
    Lu, Yi
    Dandamudi, Chola B.
    Ranganath, Prashant J.
    Javier, Kevin J.
    Ahmadian, Mohsen
    Ellison, Christopher J.
    Johnston, Keith P.
    [J]. LANGMUIR, 2018, 34 (02) : 622 - 629
  • [8] Magnetic nanoparticles for imaging technology
    He, Wen-Jie
    Hosseinkhani, Hossein
    Hong, Po-Da
    Chiang, Chiao-Hsi
    Yu, Dah-Shyong
    [J]. INTERNATIONAL JOURNAL OF NANOTECHNOLOGY, 2013, 10 (10-11) : 930 - 944
  • [9] Magnetic separation: its application in mining, waste purification, medicine, biochemistry and chemistry
    Iranmanesh, M.
    Hulliger, J.
    [J]. CHEMICAL SOCIETY REVIEWS, 2017, 46 (19) : 5925 - 5934
  • [10] Effects of Sample Container Morphology on Agglomeration Dynamics of Magnetite Nanoparticles under Magnetic Field
    Jin, Daeseong
    Kim, Hackjin
    [J]. BULLETIN OF THE KOREAN CHEMICAL SOCIETY, 2016, 37 (12) : 2069 - 2072