首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >Development of macroporous Titania monoliths using a biocompatible method. Part 1: Material fabrication and characterization
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Development of macroporous Titania monoliths using a biocompatible method. Part 1: Material fabrication and characterization

机译:使用生物相容性方法开发大孔二氧化钛单体。第 1 部分:材料制造和表征

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Monolithic titania could offer significant potential as a support for bioaffinity chromatography because of its stability, unlike silica, to a wide range of pH conditions and its ability to selectively bind phosphorylated proteins and peptides. However, traditional routes to monolithic titania utilize harsh conditions incompatible with most biomolecules. To address this, titania monoliths were prepared in a biocompatible sol-gel process from Ti(OiPr)(4) and glycerol. Varied porosities could be introduced by the additional use of high-molecular-weight poly(ethylene oxide) in the sol, which led to the formation of two phases prior to gelation. Morphologies, including bimodal meso- and macroporous structures, and the polymerization of either the dispersed or condensed phases could be controlled by the fraction and molecular weight of PEO in the sol. The roles of glycerol and PEO are to retard hydrolysis and condensation reactions so that phase separation of titanium-rich species precedes gelation processes. PEO also facilitates aggregation of growing TiO2 oligomers and particles.
机译:与二氧化硅不同,单片二氧化钛可以作为生物亲和层析的支持提供巨大的潜力,因为它在广泛的pH条件下具有稳定性,并且能够选择性地结合磷酸化蛋白质和肽。然而,通往单片二氧化钛的传统途径利用了与大多数生物分子不相容的恶劣条件。为了解决这个问题,在生物相容性溶胶-凝胶工艺中,由Ti(OiPr)(4)和甘油制备了二氧化钛单片。在溶胶中额外使用高分子量聚环氧乙烷可以引入不同的孔隙率,这导致在凝胶化之前形成两相。形态,包括双峰介孔和大孔结构,以及分散相或凝聚相的聚合可以通过溶胶中PEO的分数和分子量来控制。甘油和PEO的作用是延缓水解和缩合反应,使富钛物质的相分离先于凝胶化过程。PEO 还促进生长中的 TiO2 低聚物和颗粒的聚集。

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