Magnetic Nanoparticles: A Subject for Both Fundamental Research and Applications

被引:69
作者
Bedanta, S. [1 ]
Barman, A. [2 ]
Kleemann, W. [3 ]
Petracic, O. [4 ,5 ]
Seki, T. [6 ]
机构
[1] NISER, Sch Phys Sci, Bhubaneswar 751005, Orissa, India
[2] Sector III, S N Bose Natl Ctr Basic Sci, Dept Condensed Matter Phys & Mat Sci, Kolkata 700098, India
[3] Univ Duisburg Essen, Dept Phys, D-47057 Duisburg, Germany
[4] Forschungszentrum Julich GmbH, JARA FIT, JCNS, D-52425 Julich, Germany
[5] Forschungszentrum Julich GmbH, JARA FIT, PGI, D-52425 Julich, Germany
[6] Tohoku Univ, Inst Mat Res, Aoba Ku, Sendai, Miyagi 9808577, Japan
关键词
EXCHANGE BIAS; MAGNETOSTATIC MODES; FEPT NANOPARTICLES; MOSSBAUER-SPECTRA; SPIN-GLASS; IRON-OXIDE; DYNAMICS; NANOCRYSTALS; RELAXATION; ORDER;
D O I
10.1155/2013/952540
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Single domain magnetic nanoparticles (MNPs) have been a vivid subject of intense research for the last fifty years. Preparation of magnetic nanoparticles and nanostructures has been achieved by both bottom-up and top-down approaches. Single domain MNPs show Neel-Brown-like relaxation. The Stoner-Wohlfarth model describes the angular dependence of the switching of the magnetization of a single domain particle in applied magnetic fields. By varying the spacing between the particles, the interparticle interactions can be tuned. This leads to various supermagnetic states such as superparamagnetism, superspin glass, and superferromagnetism. Recently, the study of the magnetization dynamics of such single domain MNPs has attracted particular attention, and observations of various collective spin wave modes in patterned nanomagnet arrays have opened new avenues for on-chip microwave communications. MNPs have the potential for various other applications such as future recording media and in medicine. We will discuss the various aspects involved in the research on MNPs.
引用
收藏
页数:22
相关论文
共 166 条
  • [1] Time-resolved imaging of spin transfer switching:: Beyond the macrospin concept
    Acremann, Y
    Strachan, JP
    Chembrolu, V
    Andrews, SD
    Tyliszczak, T
    Katine, JA
    Carey, MJ
    Clemens, BM
    Siegmann, HC
    Stöhr, J
    [J]. PHYSICAL REVIEW LETTERS, 2006, 96 (21)
  • [2] Magnetic multilayers on nanospheres
    Albrecht, M
    Hu, GH
    Guhr, IL
    Ulbrich, TC
    Boneberg, J
    Leiderer, P
    Schatz, G
    [J]. NATURE MATERIALS, 2005, 4 (03) : 203 - 206
  • [3] Magnetic domain-wall logic
    Allwood, DA
    Xiong, G
    Faulkner, CC
    Atkinson, D
    Petit, D
    Cowburn, RP
    [J]. SCIENCE, 2005, 309 (5741) : 1688 - 1692
  • [4] Monte Carlo studies of the dynamics of an interacting monodispersive magnetic-particle system
    Andersson, JO
    Djurberg, C
    Jonsson, T
    Svedlindh, P
    Nordblad, P
    [J]. PHYSICAL REVIEW B, 1997, 56 (21): : 13983 - 13988
  • [5] Andrae W., 2007, Handbook of Magnetism and Advanced Magnetic Materials, V4, P2536
  • [6] [Anonymous], 2000, Modern Magnetic Materials: Principles and Applications
  • [7] Magnetic nanoparticles for drug delivery
    Arruebo, Manuel
    Fernandez-Pacheco, Rodrigo
    Ibarra, M. Ricardo
    Santamaria, Jesus
    [J]. NANO TODAY, 2007, 2 (03) : 22 - 32
  • [8] PICOSECOND OPTOELECTRONIC SWITCHING AND GATING IN SILICON
    AUSTON, DH
    [J]. APPLIED PHYSICS LETTERS, 1975, 26 (03) : 101 - 103
  • [9] Evidence for a self-organized growth in granular Co/Al2O3 multilayers
    Babonneau, D
    Petroff, F
    Maurice, JL
    Fettar, F
    Vaurès, A
    Naudon, A
    [J]. APPLIED PHYSICS LETTERS, 2000, 76 (20) : 2892 - 2894
  • [10] Cluster Synthesis and Direct Ordering of Rare-Earth Transition-Metal Nanomagnets
    Balasubramanian, Balamurugan
    Skomski, Ralph
    Li, Xingzhong
    Valloppilly, Shah R.
    Shield, Jeffrey E.
    Hadjipanayis, George C.
    Sellmyer, David J.
    [J]. NANO LETTERS, 2011, 11 (04) : 1747 - 1752