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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Role of Zn2+ Substitution on the Magnetic, Hyperthermic, and Relaxometric Properties of Cobalt Ferrite Nanoparticles
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Role of Zn2+ Substitution on the Magnetic, Hyperthermic, and Relaxometric Properties of Cobalt Ferrite Nanoparticles

机译:Zn2 +取代对钴铁氧体纳米粒子的磁性,高温和弛豫性能的作用

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摘要

Zinc substitution is often proposed as an efficient strategy to improve the performances of spinel ferrite nanoparticles, particularly related to their application as theranostic agents. In this work, a series of 8 nm spinel ferrite nanoparticles of formula CoxZnyFe3-(x+y)O4 is synthesized by thermal decomposition with the purpose of investigating the role of Zn2+ ions in modifying the structural and magnetic properties. Contrary to most of the literature on this subject, where the sum of Co and Zn is kept constant (x + y = 1), here, the amount of Co is maintained at ca. x = 0.6, corresponding to the maximum of magnetic anisotropy of the Zn-undoped system, whereas the amount of Zn is progressively varied along the series from y = 0.05 to 0.4. This approach allows enlightening the effect of the Zn introduction on the magnetic and crystal structures and, particularly, on magnetic anisotropy, which is deeply investigated by several complementary techniques. A significant increase of the saturation magnetization, M-s, upon the Zn content up to y = 0.4 is confirmed only at low temperature, whereas at room temperature, this effect is partially nullified by the weakening of the magnetic exchange coupling constants due to the increasing Zn substitution. Moreover, we demonstrate that the lattice modifications following the Zn introduction are responsible of a strong decrease of the particle magnetic anisotropy. Overall, these effects limit the use of Zn-substituted ferrites in biomedical applications like magnetic resonance imaging and magnetic fluid hyperthermia only to very low amount of Zn, as here confirmed by relaxometric and calorimetric measurements.
机译:通常提出锌取代作为改善尖晶石铁氧体纳米颗粒的性能的有效策略,特别是与其施用作为其施用剂。在这项工作中,通过热分解合成了一系列的式CoxznyFe3-(X + Y)O4的式CoxznyFe3-(X + Y)O4的纳米粒子,其目的是研究Zn2 +离子在改变结构和磁性的作用。与此对象的大多数文献相反,其中CO和Zn的总和保持恒定(x + y = 1),这里,CO的量保持在CA. X = 0.6,对应于Zn Undoped系统的磁各向异性的最大值,而Zn的量沿y = 0.05至0.4逐渐变化。该方法允许启示Zn引入对磁性和晶体结构的影响,特别是在磁各向异性上,通过几种互补技术深受研究。仅在低温下仅在低温下确认饱和磁化强度,MS的饱和磁化强度的显着增加,而在室温下,通过增加由于Zn的增加,通过磁交换耦合常数的弱化部分无序地排出这种效果代换。此外,我们证明Zn引入后的晶格修饰负责颗粒磁各向异性的强度降低。总的来说,这些效果限制了Zn取代铁氧体在磁共振成像和磁性流体热疗等生物医学应用中的使用,该磁性流体热疗仅为非常低的Zn,如这里通过弛豫和量热测量证实。

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