Relaxation time diagram for identifying heat generation mechanisms in magnetic fluid hyperthermia

Author:

Lima Enio,De Biasi Emilio,Zysler Roberto D.,Vasquez Mansilla Marcelo,Mojica-Pisciotti Mary L.,Torres Teobaldo E.,Calatayud M. Pilar,Marquina C.,Ricardo Ibarra M.,Goya Gerardo F.

Publisher

Springer Science and Business Media LLC

Subject

Condensed Matter Physics,General Materials Science,Modelling and Simulation,General Chemistry,Atomic and Molecular Physics, and Optics,Bioengineering

Reference28 articles.

1. Arelaro AD, Lima E Jr, Rossi LM, Kiyohara PK, Rechenberg HR (2007) Ion dependence of magnetic anisotropy in MFe2O4 (M = Fe Co, Mn) nanoparticles synthesized by high-temperature reaction. J Magn Magn Mater 320:e335–e338

2. Brabers VAM (2007) Ferro- and ferrimagnetic oxides and alloys. In: Kronmüller H, Parkin S (eds) Handbook of magnetism and advanced magnetic materials, vol 1. John Wiley & Sons, New York cap. 9

3. Branquinho LC, Carriao MS, Costa AS, Zufelato N, Sousa MH, Miotto R, Ivkov R, Bakuzis AF (2013) Effect of magnetic dipolar interactions on nanoparticle heating efficiency: implications for cancer hyperthermia. Sci Rep 3:2887

4. Brezovich IA (1988) Low frequency hyperthermia: Capacitive and ferromagnetic thermoseed methods. In: Palival PR, Hetzel FW (eds) Medical physics monograph, vol 16. American Institute of Physics, New York, p 82

5. Carrey J, Mehdaoui B, Respaud M (2011) Simple models for dynamic hysteresis loops calculation: application to hyperthermia optimization. J Appl Phys 109:083901

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