Super-paramagnetic nanoparticles with spinel structure: A review of synthesis and biomedical applications

被引:34
作者
Galvãoa W.S. [1 ]
Netob D.M.A. [1 ]
Freirec R.M. [1 ]
Fechined P.B.A. [1 ]
机构
[1] Grupo de Química de Materiais Avançados(GQMAT)- Departamento de Química Analítica e Físico-Química, Universidade Federal do Ceará – UFC, Campus do Pici, CP 12100, Fortaleza, CEP 60451-970, CE
关键词
Ferrites; Spinel structure; Super-paramagnetic nanoparticles; Synthesis route;
D O I
10.4028/www.scientific.net/SSP.241.139
中图分类号
学科分类号
摘要
The study of ceramic materials has attracted the attention of many researchers due to the possibility of their use in nanotechnology. The spinel ferrites form a large group of materials with a broad range of applications. Some examples include electronic devices such as high-frequency transformer cores, antenna rods, induction-tuners, among many others. However, when the ferritic materials display superparamagnetic behavior, their potential for biological applications like drug delivery, hyperthermia, resonance magnetic imaging and magnetic separation, become amazingly high. Therefore, the superparamagnetism is a characteristic strongly desired for spinel ferrites. Since this phenomenon is size-dependent, the methodologies to synthesize these materials has emerged as a crucial step in order to obtain the desired properties. In this regarding, several synthetic processes have been developed. For example, co-precipitation is a fast and cheap method to synthesize superparamagnetic spinel ferrites. However, methodologies involving microwave, ultrasound or polymers frequently result in these kind of materials. Therefore, this review brings a brief historic introduction about spinel ferrites as well as essential concepts to understand their structure and magnetic properties. In addition to this, recent advances in synthesis and applications of the superparamagnetic spinel ferrites are mentioned. © (2016) Trans Tech Publications, Switzerland.
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页码:139 / 176
页数:37
相关论文
共 168 条
[1]  
Sugimoto M., The Past, Present, and Future of Ferrites, Journal of the American Ceramic Society, 82, pp. 269-280, (1999)
[2]  
Valenzuela R., Magnetic Ceramics, (1994)
[3]  
Hilpert S., Verf V., Genetische und konstitutive Zusammenhänge in den magnetischen Eigenschaften bei Ferriten und Eisenoxyden, Berichte Der Deutschen Chemischen Gesellschaft, 42, pp. 2248-2261, (1909)
[4]  
Kato Y., Takei T., Characteristics of Metallic Oxide Magnet, Journal of Institute of Electrical Engineers of Japan, 53, pp. 408-412, (1933)
[5]  
Takei T., Yasuda T., Isshibara S., On the High-Temperature Magnetization of Ferrites, Eletrotech. J, 4, pp. 75-79, (1940)
[6]  
Neel L., Théorie du trainage magnétique des ferromagnétiques au grains fin avec applications aux terres cuites, Ann. Géophys, 5, pp. 99-136, (1949)
[7]  
Albers-Schoenberg E., Ferrites for Microwave Circuits and Digital Computers, Journal of Applied Physics, 25, (1954)
[8]  
Bobeck A.H., Properties and Device Applications of Magnetic Domains in Orthoferrites, Bell System Technical Journal, 46, pp. 1901-1925, (1967)
[9]  
Bobeck A., Fischer R., Perneski A., Remeika J., Van Uitert L., Application of orthoferrites to domain-wall devices, IEEE Transactions on Magnetics, 5, pp. 544-553, (1969)
[10]  
Dillon J.F., Gyorgy E.M., Remeika J.P., Photoinduced Magnetic Anisotropy and Optical Dichroism in Silicon-Doped Yttrium Iron Garnet, Physical Review Letters, 22, pp. 643-645, (1969)