Reeves Daniel B, Weaver John B
J Appl Phys. 2012 Dec 15;112(12):124311. doi: 10.1063/1.4770322. Epub 2012 Dec 20.
Magnetic nanoparticles are useful in many medical applications because they interact with biology on a cellular level thus allowing microenvironmental investigation. An enhanced understanding of the dynamics of magnetic particles may lead to advances in imaging directly in magnetic particle imaging or through enhanced MRI contrast and is essential for nanoparticle sensing as in magnetic spectroscopy of Brownian motion. Moreover, therapeutic techniques like hyperthermia require information about particle dynamics for effective, safe, and reliable use in the clinic. To that end, we have developed and validated a stochastic dynamical model of rotating Brownian nanoparticles from a Langevin equation approach. With no field, the relaxation time toward equilibrium matches Einstein's model of Brownian motion. In a static field, the equilibrium magnetization agrees with the Langevin function. For high frequency or low amplitude driving fields, behavior characteristic of the linearized Debye approximation is reproduced. In a higher field regime where magnetic saturation occurs, the magnetization and its harmonics compare well with the effective field model. On another level, the model has been benchmarked against experimental results, successfully demonstrating that harmonics of the magnetization carry enough information to infer environmental parameters like viscosity and temperature.
磁性纳米颗粒在许多医学应用中都很有用,因为它们在细胞水平上与生物相互作用,从而能够进行微环境研究。对磁性颗粒动力学的深入理解可能会推动在磁性颗粒成像中直接成像或通过增强磁共振成像(MRI)对比度方面取得进展,并且对于像布朗运动磁谱这样的纳米颗粒传感至关重要。此外,诸如热疗等治疗技术在临床中有效、安全且可靠地使用需要有关颗粒动力学的信息。为此,我们从朗之万方程方法出发,开发并验证了旋转布朗纳米颗粒的随机动力学模型。在没有磁场的情况下,趋向平衡的弛豫时间与爱因斯坦的布朗运动模型相符。在静态磁场中,平衡磁化强度与朗之万函数一致。对于高频或低振幅驱动场,再现了线性化德拜近似的行为特征。在发生磁饱和的更高磁场区域,磁化强度及其谐波与有效场模型比较吻合。在另一个层面上,该模型已根据实验结果进行了基准测试,成功证明磁化强度的谐波携带了足够的信息来推断诸如粘度和温度等环境参数。