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首页> 外文期刊>Advanced Powder Technology: The internation Journal of the Society of Powder Technology, Japan >Superparamagnetic magnesium ferrite/silica core-shell nanospheres: A controllable SiO2 coating process for potential magnetic hyperthermia application
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Superparamagnetic magnesium ferrite/silica core-shell nanospheres: A controllable SiO2 coating process for potential magnetic hyperthermia application

机译:超顺磁性镁铁素体/二氧化硅核 - 壳纳米球:可控的SiO2涂布方法,用于潜在磁体热疗应用

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The control of coating shell becoming important to improve the applicability of magnetic nanoparticles. Herein, we present the scalable technique for preparing MgFe2O4/SiO2 core-shell nanospheres with finely tuned shell thickness and their efficiency in magnetic hyperthermia heating agent. At first, MgFe2O4 dense nanosphere derived from one-step ultrasonic spray pyrolysis (USP) technique. Silica shells were then coated on the as prepared nanospheres with tunable thickness from 10 to 30 nm. We show that the thickness of this coating is finely controlled at allowing our proposed level by using the required amount of SiO2 precursor (SiC8H20O4)/acidic catalyst (HCl) ratio where the surface area of core nanospheres are significantly considered. X-ray diffraction reveals the cubic spinel ferrite structure of core particles with crystallite size 9.6 +/- 1.8 nm and Fourier transform infrared spectrum analysis confirmed the formation of SiO2. The morphological observation clarified the uniform and smooth SiO2 shell where core-shell nanostructure is highly monodispersed in a liquid medium. M-H loops confirmed the superparamagnetic nature of all samples at room temperature. Significantly reduced ion release concentration in an aqueous solvent of the coated nanospheres compared with uncoated sample demonstrates the hermetically coating feature of dense SiO2. This MgFe2O4/SiO2 core-shell nanospheres with thine SiO2 shell (10 nm) shows effective heating rate in the operative region (<46 degrees C) which makes them promising candidates for application as magnetic hyperthermia heating agent. (C) 2019 The Society of Powder Technology Japan. Published by Elsevier B.V. and The Society of Powder Technology Japan. All rights reserved.
机译:涂层壳对提高磁性纳米颗粒的适用性来说变得重要。在此,我们介绍了用于制备MgFe 2 O 4 / SiO2核 - 壳纳米球的可伸缩技术,其具有精细调谐的壳体厚度及其在磁体热疗加热剂中的效率。首先,MgFe2O4致密纳米源自一步式超声波喷雾热解(USP)技术。然后将二氧化硅壳涂覆在作为制备的纳米球上,可调谐厚度为10至30nm。我们表明,通过使用所需量的SiO 2前体(SiC8H20O4)/酸性催化剂(HCl)比显着考虑,在允许我们所提出的水平时精细地控制该涂层的厚度。 X射线衍射揭示了核心颗粒的立方尖晶石铁氧体结构,具有微晶尺寸9.6 +/- 1.8nm和傅里叶变换红外光谱分析证实了SiO2的形成。形态学观察阐明了均匀和光滑的SiO 2壳,其中核 - 壳纳米结构高度单分散在液体介质中。 M-H循环确认了室温下所有样品的超顺磁性。与未涂覆的样品相比,涂覆纳米球的水性溶剂中的离子释放浓度显着降低,证明了致密SiO2的气密涂层特征。该MgFe 2 O 4 / SiO 2核 - 壳纳米烷基纳米壳(10nm)显示了操作区域(<46℃)中的有效加热速率,这使得它们具有施用作为磁体热疗加热剂的候选物。 (c)2019年日本粉末技术学会。由elsevier b.v发表。和日本粉末科技会。版权所有。

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