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Formation, morphology and control of high-performance biomedical polyurethane porous membranes by water micro-droplet induced phase inversion

机译:水微滴诱导相转化法制备高性能生物医学聚氨酯多孔膜的方法,形貌及控制

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摘要

Biomedical polyurethane (BPU) porous membranes with controlled morphology and excellent permeability and mechanical properties were prepared via a method involving a phase inversion induced by water micro-droplets, which were generated by an ultrasonic atomizer. The cross-section morphology, air permeability and mechanical properties of the porous membranes were investigated. The SEM images demonstrated that the adjacent pores were connected by a micro-hole, serving as a "backdoor" for the pore. An interconnected porous structure was obtained, improving the air permeability of the BPU membrane relative to the membrane produced by immersion precipitation. Our studies indicated that the diameter of the pores in the membrane depended on the solution viscosity, allowing porous membranes with a desired morphology to be obtained by adjusting the polymer concentration and solution viscosity. The application of micro-droplets of water during membrane preparation reduced the exchange rate between the solvent and nonsolvent, resulting in the microphase separation of polymer molecules and the formation of a uniform porous structure in the membrane, which improved the air permeability and mechanical properties of the BPU porous membranes. This is a simple and effective preparation method for high-performance porous membranes with potential applications in tissue engineering scaffolds, controlled-release drug delivery and vascular grafts. (C) 2014 Elsevier Ltd. All rights reserved.
机译:采用超声雾化器产生的水微滴诱导相转化的方法,制备了形态可控,渗透性和机械性能优异的生物医学聚氨酯(BPU)多孔膜。研究了多孔膜的截面形态,透气性和力学性能。 SEM图像表明,相邻的孔通过微孔连接,成为该孔的“后门”。获得了互连的多孔结构,相对于通过浸没沉淀产生的膜,提高了BPU膜的透气性。我们的研究表明,膜中孔的直径取决于溶液粘度,从而可以通过调节聚合物浓度和溶液粘度来获得具有所需形态的多孔膜。在膜制备过程中应用微滴水会降低溶剂与非溶剂之间的交换速率,从而导致聚合物分子发生微相分离并在膜中形成均匀的多孔结构,从而改善了膜的透气性和机械性能。 BPU多孔膜。这是一种高性能多孔膜的简单有效的制备方法,在组织工程支架,控释药物输送和血管移植物中具有潜在的应用前景。 (C)2014 Elsevier Ltd.保留所有权利。

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