Chemical and Geological Science Department, University of Cagliari, SS 554 Bivio Per Sestu, 09042 Monserrato (CA), Italy.
Department of Chemical Sciences, Bernal Institute, University of Limerick, V94 T9PX, Limerick, Ireland.
J Nanosci Nanotechnol. 2021 May 1;21(5):2930-2934. doi: 10.1166/jnn.2021.19041.
In this study, we present the preparation of superparamagnetic ordered mesoporous silica (SOMS) for biomedical applications by the combination of high energy ball milling (HEBM) and the liquid crystal template method (LCT) to produce a material comprised of room temperature superparamagnetic Fe₃O₄ nanoparticles in a MCM-41 like mesostructured silica. In a typical synthesis, a mixture of Fe₂O₃ and silica was sealed in a stainless-steel vial with steel balls. Ball milling experiments were performed in a vibratory mill apparatus. The milling process produced nanocomposites with an average size ranging from ∼100-200 nm, where the Fe₃O₄ nanoparticles (4.8 nm size) are homogeneously dispersed into the amorphous SiO₂ matrix. The obtained nanocomposite has been used for the preparation of the SOMS through the LCT method. Structural, morphological and textural characterization were performed using X-ray powder diffraction, transmission electron microscopy and nitrogen sorption analysis. Field dependence of magnetization was investigated and showed superparamagnetic behaviour at 300 K with a value of saturation magnetization () that is of interest for biomedical applications.
在这项研究中,我们通过高能球磨(HEBM)和液晶模板法(LCT)的结合,制备了用于生物医学应用的超顺磁有序介孔硅(SOMS),以生产由室温超顺磁 Fe₃O₄纳米粒子组成的材料类似介孔结构的二氧化硅。在典型的合成中,将 Fe₂O₃和二氧化硅的混合物密封在不锈钢小瓶中,加入钢球。球磨实验在振动磨设备中进行。该研磨过程产生了平均尺寸在 100-200nm 之间的纳米复合材料,其中 Fe₃O₄纳米粒子(4.8nm 尺寸)均匀分散在无定形 SiO₂基质中。通过 LCT 法得到的纳米复合材料已用于制备 SOMS。使用 X 射线粉末衍射、透射电子显微镜和氮气吸附分析对结构、形态和结构进行了表征。研究了磁化强度的场依赖性,结果表明在 300K 时具有超顺磁性,饱和磁化强度 ()值适用于生物医学应用。