Please use this identifier to cite or link to this item: https://doi.org/10.1063/1.3684963
Title: Stable vortex magnetite nanorings colloid: Micromagnetic simulation and experimental demonstration
Authors: Yang, Y.
Liu, X.-L.
Yi, J.-B.
Yang, Y.
Fan, H.-M.
Ding, J. 
Issue Date: 15-Feb-2012
Citation: Yang, Y., Liu, X.-L., Yi, J.-B., Yang, Y., Fan, H.-M., Ding, J. (2012-02-15). Stable vortex magnetite nanorings colloid: Micromagnetic simulation and experimental demonstration. Journal of Applied Physics 111 (4) : -. ScholarBank@NUS Repository. https://doi.org/10.1063/1.3684963
Abstract: Magnetite nanoring with vortex domain structure may form stable magnetic colloid for biomedical applications due to its weak magnetic interaction without superparamagnetic (SPM) limitation. In the present study, we perform three-dimensional (3 D) Landau-Liftshitz-Gilbert (LLG) micromagnetics simulation for magnetite nanorings. The ground state phase diagram and stable vortex area (SVA) as a function of outer diameter (D out), thickness (T), and inner to outer diameter ratios (β) within 100 nm are obtained. The influence of notch, eccentricity, and crystallographic orientation are taken carefully into consideration. In the SVA, the vortex state is not only the ground state but also the remanence state after in-plane is fully magnetized. In particular, the results suggest that a 20 nm inter-rings distance for a typical magnetite nanoring (D out = 70 nm, T = 50 nm, and β = 0.6) can achieve the stable colloid based on vortex domain structure. Furthermore, these simulation results have been confirmed experimentally and demonstrated by using phosphorylated-mPEG modified magnetite nanorings. The optimization of magnetite nanorings from both simulation and experiments in this work pave the way to achieve such novel and stable vortex domain based magnetic suspension for various biomedical applications. © 2012 American Institute of Physics.
Source Title: Journal of Applied Physics
URI: http://scholarbank.nus.edu.sg/handle/10635/86726
ISSN: 00218979
DOI: 10.1063/1.3684963
Appears in Collections:Staff Publications

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