Institut de Physique et Chimie des Matériaux de Strasbourg (IPCMS), UMR 7504 CNRS-Université de Strasbourg, 23 rue du Loess BP 43, 67034 Strasbourg CEDEX 2, France.
Laboratoire de Matière Condensée et Sciences Interdisciplinaires (LaMCScI), Faculty of Sciences, BP 1014 RP, Mohammed V University in Rabat, 10000 Rabat, Morocco.
Int J Mol Sci. 2020 Oct 21;21(20):7775. doi: 10.3390/ijms21207775.
Superparamagnetic ZnFeO magnetic nanoparticles (0 ≤ x < 0.5) with spherical shapes of 16 nm average diameter and different zinc doping level have been successfully synthesized by co-precipitation method. The homogeneous zinc substitution of iron cations into the magnetite crystalline structure has led to an increase in the saturation magnetization of nanoparticles up to 120 Am/kg for x ~ 0.3. The specific absorption rate (SAR) values increased considerably when x is varied between 0 and 0.3 and then decreased for x ~ 0.5. The SAR values are reduced upon the immobilization of the nanoparticles in a solid matrix being significantly increased by a pre-alignment step in a uniform static magnetic field before immobilization. The SAR values displayed a quadratic dependence on the alternating magnetic field amplitude (H) up to 35 kA/m. Above this value, a clear saturation effect of SAR was observed that was successfully described qualitatively and quantitatively by considering the non-linear field's effects and the magnetic field dependence of both Brown and Neel relaxation times. The Neel relaxation time depends more steeply on H as compared with the Brown relaxation time, and the magnetization relaxation might be dominated by the Neel mechanism, even for nanoparticles with large diameter.
具有 16nm 平均直径和不同锌掺杂水平的超顺磁 ZnFeO 磁性纳米粒子(0≤x<0.5)已通过共沉淀法成功合成。锌离子均匀取代磁铁矿晶体结构中的铁阳离子,导致纳米粒子的饱和磁化强度增加至 120Am/kg(x≈0.3)。当 x 在 0 到 0.3 之间变化时,比吸收率(SAR)值显著增加,然后当 x≈0.5 时又降低。当纳米粒子固定在固体基质中时,其 SAR 值会降低,但是通过在固定之前在均匀静磁场中进行预定向步骤,SAR 值会显著增加。SAR 值与交流磁场幅度(H)呈二次依赖关系,直至 35kA/m。超过此值,观察到 SAR 的明显饱和效应,通过考虑非线性场的影响以及布朗和奈尔弛豫时间对磁场的依赖性,可以定性和定量地描述该饱和效应。与布朗弛豫时间相比,奈尔弛豫时间对 H 的依赖性更大,并且即使对于具有大直径的纳米粒子,磁化弛豫也可能由奈尔机制主导。
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