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Magnetic Vortices as Efficient Nano Heaters in Magnetic Nanoparticle Hyperthermia

机译:磁涡旋作为磁性纳米粒子热疗中的高效纳米加热器

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摘要

Magnetic vortices existing in soft magnetic nanoparticles with sizes larger than the single-domain diameter can be efficient nano-heaters in biomedical applications. Using micromagnetic numerical simulation we prove that in the optimal range of particle diameters the magnetization reversal of the vortices in spherical iron and magnetite nanoparticles is possible for moderate amplitudes of external alternating magnetic field, H0 < 100 Oe. In contrast to the case of superparamagnetic nanoparticles, for the vortex configuration the hysteresis loop area increases as a function of frequency. Therefore, high values of the specific absorption rate, on the order of 1000 W/g, can be obtained at frequencies f = 0.5–1.0 MHz. Because the diameter D of a non single-domain particle is several times larger than the diameter d of a superparamagnetic particle, the volume of heat generation for the vortex turns out to be (D/d)3 times larger. This shows the advantage of vortex configurations for heat generation in alternating magnetic field in biomedical applications.
机译:存在于尺寸大于单畴直径的软磁性纳米粒子中的磁涡流可以是生物医学应用中的高效纳米加热器。通过微磁数值模拟,我们证明了在最佳粒径范围内,对于中等振幅的外部交变磁场H0 <100 Oe,球形铁和磁铁矿纳米粒子中涡旋的磁化反转是可能的。与超顺磁性纳米颗粒的情况相反,对于涡旋结构,磁滞回线面积随频率增加。因此,在频率f = 0.5-1.0 MHz时,可以获得比吸收率高的值,约为1000 W / g。因为非单畴粒子的直径D是超顺磁性粒子的直径d的几倍,所以涡流的发热量为(D / d) 3 倍更大。这显示了涡旋构造在生物医学应用中在交变磁场中产生热量的优势。

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