| Literature DB >> 21076702 |
A P Reena Mary, T N Narayanan, Vijutha Sunny, D Sakthikumar, Yasuhiko Yoshida, P A Joy, M R Anantharaman.
Abstract
Bio-compatible magnetic fluids having high saturation magnetization find immense applications in various biomedical fields. Aqueous ferrofluids of superparamagnetic iron oxide nanoparticles with narrow size distribution, high shelf life and good stability is realized by controlled chemical co-precipitation process. The crystal structure is verified by X-ray diffraction technique. Particle sizes are evaluated by employing Transmission electron microscopy. Room temperature and low-temperature magnetic measurements were carried out with Superconducting Quantum Interference Device. The fluid exhibits good magnetic response even at very high dilution (6.28 mg/cc). This is an advantage for biomedical applications, since only a small amount of iron is to be metabolised by body organs. Magnetic field induced transmission measurements carried out at photon energy of diode laser (670 nm) exhibited excellent linear dichroism. Based on the structural and magnetic measurements, the power loss for the magnetic nanoparticles under study is evaluated over a range of radiofrequencies.Entities:
Year: 2010 PMID: 21076702 PMCID: PMC2956030 DOI: 10.1007/s11671-010-9729-4
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Figure 1XRD pattern of the fluid particles
Figure 2a Transmission electron micrograph (TEM), b particle size distribution
Figure 3Magnetic hysteresis curves of SPIONs at 300 and 6 K (inset): enlarged loop under low Fields
Figure 4Theoretical fitting of normalized moment with Langevin function. (Inset) Magnetization–H−1 plot for Iron Oxide nanoparticles
Figure 5Zero Field Cooled (ZFC) and Field Cooled (FC) magnetization at 30mT
Figure 6Field induced optical absorbance for the aqueous ferrofluid in two different polarizations
Figure 7Power loss spectrum as a function of AC frequency for the ferrofluid