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Amorphous Ibuprofen Confined in Nanostructured Silica Materials: A Dynamical Approach

机译:局限在纳米二氧化硅材料中的非晶布洛芬:动力学方法

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The molecular mobility of condensed matter confined to nanometer dimensions can be dramatically changed from those of the bulk state in such a way that, when the guest is a drug, it can be advantageously used in pharmaceutical applications. We show by dielectric relaxation spectroscopy that the molecular mobility of the important ibuprofen drug embedded in nanoporous SBA-15 is significantly influenced by the confinement. An evidence of the existence of two families of molecules with different molecular mobilities is provided and investigated in their temperature depen- dence. One family is due to molecules close to the pores' center with a higher mobility compared with the bulk at low temperatures, and another family with slower dynamics originated from molecules interacting with the pore walls. The work reports the simultaneous manifestation of true confinement and surface effects in this nanostructured silica host for a drug. For future applications in drug delivery systems, the dynamics determined by the guest—host interplay and the one of the bulklike molecules can be tuned to achieve a desired release profile.
机译:限制在纳米尺寸内的浓缩物的分子迁移率可以从堆积状态的分子迁移率显着改变,使得当客体是药物时,其可以有利地用于药物应用中。我们通过介电弛豫光谱法表明,禁闭作用显着影响埋在纳米孔SBA-15中的重要布洛芬药物的分子迁移率。提供了存在两个分子迁移率不同的分子家族的证据,并根据它们的温度依赖性对其进行了研究。与低温下相比,一个家族是由于分子靠近孔中心而具有较高的迁移率,而另一家族的动力学则是由于分子与孔壁相互作用而产生的,动力学较慢。这项工作报告了在这种药物的纳米结构二氧化硅基质中同时存在限制和表面作用的同时表现。对于将来在药物输送系统中的应用,可以调整由来宾-宿主相互作用和块状分子之一决定的动力学,以实现所需的释放曲线。

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