硅水凝胶膜的形貌对O2渗透性的影响:实验和模拟对领域渗流的新见解

ty10086 提交于 周三, 08/25/2021 - 16:25
文章英文标题
Impact of morphology on O2 permeability in silicone hydrogel membranes: new insights into domain percolation from experiments and simulations
正文
氧通过有机硅-水凝胶( SiHy )材料的运输,在生物材料的应用中具有极大的兴趣。本研究通过传统的库仑通量法,以及通过1 H NMR T1弛豫法,对含有不同硅氧烷共聚单体的紫外光固化聚丙烯酰胺制成的水凝胶的O2渗透性进行了分析。通过库仑通量法研究表明,与支化硅氧烷( TRIS )相比,具有短线型硅氧烷侧链( PDMS )的交联聚丙烯酰胺( PDMS )具有更高的O2透过率和O2溶解度;而通过核磁共振( NMR ) T1分析直接测定,支化硅氧烷样品的O2溶解度略高于其自由体积。为了了解这种差异背后的原因,我们采用29Si和1H NMR T2弛豫法以及小角X射线散射( SAXS )进行了一系列形态学研究。这些结果是在同一体系上进行的分子动力学模拟的背景下讨论的,这些模拟结果共同有力地提示了形态对O2渗透率起关键作用。提出由线性有机硅( PDMS )制成的样品,其硅氧烷相分离比其体积相对应的TRIS更明显。对于亲水性结构域的渗出路径迂曲度减小的PDMS样品,发现了明显的渗出疏水硅氧烷含量为硅氧烷含量的两倍的硅氧烷结构域。线性硅氧烷中的迁移率也要高得多,这可以归因于分子结构的不同以及由于不同的畴结构所产生的界面和拓扑约束较少。因此,我们提出了一个SiHys中O2渗透的框架,强调了渗透疏水区在设计具有最优O2渗透性能的SiHy中的重要性。研究表明,虽然简单的渗透率测量可以用于材料的比较,但多重正交技术的使用对于发展更完整地理解异质材料中的小分子输运至关重要。
文章内容(英文)
The transport of oxygen through silicone-hydrogel (SiHy) materials is of great interest in bio-materials' applications. In this study O 2 permeability of hydrogels made from UV-cured polyacrylamide containing different siloxane co-monomers were analyzed through the traditional coulometric flux method, as well as by 1 H NMR T 1 relaxometry. It was shown by coulometric flux methods that the crosslinked polyacrylamide with short, linear siloxane side chains (polydimethylsiloxane (PDMS)) has higher O 2 permeability as well as O 2 solubility, as calculated from the composite diffusivity, than that with branched siloxane (tris-(trimethylsiloxysilyl-) (TRIS)). On the other hand, based on direct measurement from NMR T 1 analyses, a slightly higher O 2 solubility was observed for the samples with branched siloxane as expected from its larger free volume. In order to understand the reason behind this discrepancy, a series of morphological studies using 29 Si and 1 H NMR T 2 relaxometry, as well as small-angle X-ray scattering (SAXS) were undertaken. These results are discussed in the context of molecular dynamic simulations undertaken on the same systems which together strongly suggest that morphology plays a critical role in O 2 permeability. It is proposed that samples made from the linear silicone, PDMS, has a more pronounced siloxane phase separation than its bulky counterpart, TRIS. Significantly percolating hydrophobic silicone domains with twice the siloxane content are found for the PDMS sample with reduced tortuosity of the hydrophilic domain's percolating path. The mobility in the linear siloxane was also much higher which can be attributed to the molecular structure and to fewer interfacial and topological constraints arising from the different domain structure. Hence, we propose a framework for O 2 permeability in SiHys, emphasizing the importance of percolated hydrophobic domain in designing SiHy with optimized O 2 permeability. The study demonstrates that while a simple permeability measurement can be used for materials' comparison, the use of multiple orthogonal techniques is critical for developing a more complete understanding of small molecule transport in heterogeneous materials.
来源出处
Journal|[J]Journal of Membrane ScienceVolume 621, 2021.
DOI
https://doi.org/10.1016/J.MEMSCI.2020.118970

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