Title :
Study on the Thermal Characteristics of Fe3O4 Nanoparticles and Gelatin Compound for Magnetic Fluid Hyperthermia in Radiofrequency Magnetic Field
Author :
Jiangtao Li ; Zheng Liang ; Xu Zhong ; Zhijie Zhao ; Jianhao Li
Author_Institution :
Sch. of Electr. Eng., Xi´an Jiaotong Univ., Xi´an, China
Abstract :
Hyperthermia is the therapy heating of certain organs or tissues to temperature 41 °C~46 °C for cancer treatment. Magnetic fluid hyperthermia, based on magnetic inductive heating (MIH) and proposed using magnetic particles as the heat mediator, is one potential treatment with great advantages and has attracted much attention in recent years. Among various kinds of magnetic materials, ferric oxide nanoparticles, such as Fe3O4, are widely used because of their excellent biocompatibility and easy preparation method. Considering that the working mechanism and heating properties are not fully understood, this paper studied the thermal characteristics of Fe3O4 nanoparticles mixed with gelatin under a radiofrequency magnetic field. After analyzing thermal physics and electromagnetic property, the relationship between heating power and parameters, including particle concentration, magnetic field intensity, and field frequency, was found in accordance with the power loss formula of a ferromagnet in a alternating magnetic field.
Keywords :
biological organs; biological tissues; ferromagnetic materials; gelatin; hyperthermia; magnetic fluids; magnetic particles; nanocomposites; nanofabrication; nanomagnetics; nanomedicine; nanoparticles; particle size; radiation therapy; Fe3O4; alternating magnetic field; biocompatibility; cancer treatment; electromagnetic property; ferric oxide nanoparticles; ferromagnet; field frequency; gelatin compound; heat mediator; heating power; heating properties; magnetic field intensity; magnetic fluid hyperthermia; magnetic inductive heating; magnetic particles; organs; particle concentration; power loss formula; radiofrequency magnetic field; temperature 41 degC to 46 degC; therapy heating; thermal characteristics; thermal physics; tissues; Compounds; Heating; Hyperthermia; Magnetic domains; Magnetic hysteresis; Magnetic resonance imaging; Nanoparticles; Fe3O4 nanoparticle; gelatin; heating power; magnetic fluid hyperthermia (MFH);
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2014.2323411