Title :
Physical Parameters to Enhance AC Magnetically Induced Heating Power of Ferrite Nanoparticles for Hyperthermia in Nanomedicine
Author :
Minhong Jeun ; Sanghoon Lee ; Yu Jeong Kim ; Hwa Yeon Jo ; Ki Ho Park ; Sun Ha Paek ; Takemura, Y. ; Seongtae Bae
Author_Institution :
Dept. of Electr. & Comput. Eng., Nat. Univ. of Singapore, Singapore, Singapore
Abstract :
Solid-state ferrimagnetic MFe2O4 (M = Mg, Ni, Co; mean diameter size d = 30-35 nm) and superparamagnetic MFe2O4 (M = Mg, Ni, Mn0.5Zn0.5; d = 6-8 nm) nanoparticles [ferromagnetic nanoparticles (FMNPs) and superparamagnetic nanoparticles (SPNPs)] were used to explore the physical mechanisms of ac magnetically induced heating and identify what physical parameters would be the most critical to enhance the ac magnetically induced heating power for local in vivo hyperthermia agent applications. It was experimentally confirmed that “dc (minor) hysteresis loss power” generated by the magnetization reversal process, and “Néel relaxation loss power” generated by fluctuation of the magnetic moment dominantly contribute to the ac heat generation of FMNPs and SPNPs, respectively. In addition, all the experimentally and physically analyzed results demonstrated that the improvement of in-phase magnetic susceptibility χ´m is directly relevant to the “dc (minor) hysteresis loss power” as well as the dc magnetic softness, and the out-of-phase magnetic susceptibility χ´´m is directly relevant to the “Néel relaxation loss power (or ac magnetic hysteresis loss power, A )” as well as the ac magnetic softness are the most crucial physical parameters responsible for enhancing the ac magnetically induced heating power of solid-state FMNPs and SPNPs, respectively. Particularly, some technical and engineering approaches, which can improve the χ´m of FMNPs and the χ´´m of SPNPs, were proposed and introduced in this study to provide crucial information how to effectively design and develop a new promising hyperthermia agent in nanomedicine.
Keywords :
Neel temperature; biomedical materials; cobalt compounds; ferrites; ferromagnetic materials; ferromagnetic relaxation; hyperthermia; magnesium compounds; magnetic hysteresis; magnetic leakage; magnetic moments; magnetic particles; magnetic susceptibility; magnetisation reversal; manganese compounds; nanomagnetics; nanomedicine; nanoparticles; nickel compounds; soft magnetic materials; superparamagnetism; zinc compounds; AC magnetically induced heating power; CoFe2O4; MgFe2O4; Mn0.5Zn0.5Fe2O4; Neel relaxation loss power; NiFe2O4; ac heat generation; ac magnetic hysteresis loss power; ac magnetic softness; dc hysteresis loss power; dc magnetic softness; ferrite nanoparticles; ferromagnetic nanoparticles; fluctuation; in-phase magnetic susceptibility; local in vivo hyperthermia agent applications; magnetic moment; magnetization reversal; mean diameter size; nanomedicine; out-of-phase magnetic susceptibility; physical mechanisms; physical parameters; size 30 nm to 35 nm; size 6 nm to 8 nm; solid-state FMNP; solid-state SPNP; solid-state ferrimagnetic nanoparticles; superparamagnetic nanoparticles; Heating; Loss measurement; Magnetic hysteresis; Magnetic susceptibility; Nanoparticles; Perpendicular magnetic anisotropy; Hysteresis loss power; magnetic nanoparticle hyperthermia; physical parameters; relaxation loss power;
Journal_Title :
Nanotechnology, IEEE Transactions on
DOI :
10.1109/TNANO.2013.2247414