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Titanate-silica mesostructured nanocables: synthesis, structural analysis and biomedical applications

机译:钛酸酯-二氧化硅介孔结构的纳米电缆:合成,结构分析和生物医学应用

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1D hierarchical composite mesostructures of titanate and silica were synthesized via an interfacial surfactant templating approach. Such mesostructures have complex core-shell architectures consisting of single-crystalline H2Ti3O7 nanobelts inside the ordered mesoporous SiO2 shell, which are nontoxic and highly biocompatible. The overall diameter of as-prepared 1D hierarchical composite mesostructures is only approx. 34.2 nm with a length over 500 nm on average. A model to explain the formation mechanism of these mesostructures has been proposed; the negatively charged surface of H2Ti3O7 nanobelts controls the formation of the octadecyltrimethylammonium bromide (C(18)TAB) bilayer, which in turn regulates the cooperative self-assembly of silica and C(18)TAB complex micelles on the interface to produce a mesoporous silica shell. More importantly, the application of synthesized mesostructured nanocables as anticancer drug reservoirs has also been explored, which indicates that the membranes containing these mesoporous nanocables have a great potential to be used as transdermal drug delivery systems.
机译:通过界面活性剂模板法合成了钛酸酯和二氧化硅的一维分层复合介观结构。这种介孔结构具有复杂的核-壳结构,该结构由有序介孔SiO2壳内部的H2Ti3O7单晶纳米带组成,无毒且具有高生物相容性。所准备的一维分层复合介观结构的总直径仅为约。 34.2 nm,平均长度超过500 nm。提出了解释这些介孔结构形成机理的模型。 H2Ti3O7纳米带的带负电荷的表面控制了十八烷基三甲基溴化铵(C(18)TAB)双层的形成,该双层反过来又调节了二氧化硅和C(18)TAB复合胶束在界面上的协同自组装,从而产生了介孔二氧化硅贝壳。更重要的是,还研究了合成的介孔纳米电缆作为抗癌药物储库的应用,这表明含有这些介孔纳米电缆的膜具有很大的潜力,可以用作透皮给药系统。

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