聚合物载体与维生素C对受控释放应用的物理化学表征和动力学研究
1Cracow University of Technology, CUT Doctoral School, Faculty of Materials Engineering and Physics, Department of Material Engineering, 31-864 Cracow, Poland.
Materials (Basel, Switzerland)
|November 27, 2024
概括
这项研究评估了微囊,水凝和混合系统中的维生素C释放动力学. 希古奇和科尔斯迈耶-佩帕斯模型最好地描述了释放,表明扩散控制,混合系统提供持续的维生素C输送.
科学领域:
- 材料科学 材料科学 材料科学
- 制药科学 制药科学
- 化学工程是化学工程的重要组成部分.
背景情况:
- 维生素C的输送系统对于持续的治疗效果至关重要.
- 微囊和水凝提供不同的释放配置文件.
- 混合系统旨在将优势结合起来,以提高交付效率.
研究的目的:
- 选择和评估维生素C释放的动力模型.
- 为了比较微囊,水凝和混合系统的释放动力学.
- 在不同的条件下确定主要释放机制.
主要方法:
- 合成含有维生素C的微囊和水凝.
- 混合系统的制造,将微囊纳入水凝矩阵中.
- 在静态和动态条件下进行物理化学表征 (密度,多孔度,WVTR) 和运动释放研究.
- 将实验数据与六种已建立的运动模型 (零级,一级,二级,希古奇,科尔斯迈耶-佩帕斯,希克森-克劳尔) 相匹配.
主要成果:
- 希古奇和科尔斯迈耶-佩帕斯模型最好地描述了大多数系统中维生素C释放动力学.
- 释放机制主要以扩散控制,在动态条件下矩阵膨胀显著.
- 与单个系统相比,混合系统表现出更慢,更受控制和持续的维生素C释放.
结论:
- 扩散是控制这些系统中维生素C释放的主要机制.
- 混合系统表现出优异的持续释放特性,有利于长时间的治疗应用.
- 动力建模对于理解和优化药物输送系统性能至关重要.
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