The Synthesis Methodology and Characterization of Nanogold-Coated Fe3O4 Magnetic Nanoparticles

分散性 纳米颗粒 材料科学 动态光散射 磁性纳米粒子 结块 扫描电子显微镜 化学工程 纳米技术 粒子(生态学) 表征(材料科学) 粒径 复合材料 高分子化学 地质学 工程类 海洋学
作者
Magdalena Kędzierska,Anna Drabczyk,Mateusz Jamroży,Sonia Kudłacik–Kramarczyk,Magdalena Głąb,Bożena Tyliszczak,Wojciech Bańkosz,Piotr Potemski
出处
期刊:Materials [Multidisciplinary Digital Publishing Institute]
卷期号:15 (9): 3383-3383 被引量:9
标识
DOI:10.3390/ma15093383
摘要

Core-shell nanostructures are widely used in many fields, including medicine and the related areas. An example of such structures are nanogold-shelled Fe3O4 magnetic nanoparticles. Systems consisting of a magnetic core and a shell made from nanogold show unique optical and magnetic properties. Thus, it is essential to develop the methodology of their preparation. Here, we report the synthesis methodology of Fe3O4@Au developed so as to limit their agglomeration and increase their stability. For this purpose, the impact of the reaction environment was verified. The properties of the particles were characterized via UV-Vis spectrophotometry, dynamic light scattering (DLS), X-ray diffraction (XRD), and Scanning Electron Microscopy-Energy Dispersive X-ray analysis (SEM-EDS technique). Moreover, biological investigations, including determining the cytotoxicity of the particles towards murine fibroblasts and the pro-inflammatory activity were also performed. It was demonstrated that the application of an oil and water reaction environment leads to the preparation of the particles with lower polydispersity, whose agglomerates’ disintegration is 24 times faster than the disintegration of nanoparticle agglomerates formed as a result of the reaction performed in a water environment. Importantly, developed Fe3O4@Au nanoparticles showed no pro-inflammatory activity regardless of their concentration and the reaction environment applied during their synthesis and the viability of cell lines incubated for 24 h with the particle suspensions was at least 92.88%. Thus, the developed synthesis methodology of the particles as well as performed investigations confirmed a great application potential of developed materials for biomedical purposes.

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