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首页> 外文期刊>Journal of Membrane Science >Preparation and characterization of porous conducting poly(DL-lactide) composite membranes
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Preparation and characterization of porous conducting poly(DL-lactide) composite membranes

机译:多孔导电聚丙交酯复合膜的制备与表征

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摘要

Solid conducting biodegradable composite membranes have shown to enhance nerve regeneration. However, few efforts have been directed toward porous conducting biodegradable composite membranes for the same purpose. In this study, we have fabricated some porous conducting poly((DL)-lactide) composite membranes which can be used for the biodegradable nerve conduits. The porous poly((DL)-lactide) membranes were first prepared through a phase separation method, and then they were incorporated with polypyrrole to produce porous conducting composite membranes by polymerizing pyrrole monomer in gas phase using FeCl3 as oxidant. The preparation conditions were optimized to obtain membranes with controlled pore size and porosity. The direct current conductivity of composite membrane was investigated using standard four-point technique. The effects of polymerization time and the concentration of oxidant on the conductivity of the composite membrane, were examined. Under optimized polymerization conditions, some composite membranes showed a conductivity close to 10(-3) S cm(-1) with a lower polypyrrole loading between 2 and 3 wt.%. A consecutive degradation in Ringer's solution at 37 degreesC indicated that the conductivity of composite membrane did not exhibit significant changes until 9 weeks although a noticeable weight loss of the composite membrane could be seen since the end of the second week. (C) 2004 Elsevier B.V. All rights reserved.
机译:固态导电可生物降解复合膜已显示出可增强神经再生。然而,出于相同的目的,很少有人致力于多孔导电的可生物降解的复合膜。在这项研究中,我们制造了一些多孔导电聚((DL)-丙交酯)复合膜,可用于可生物降解的神经导管。首先通过相分离法制备多孔聚(DL)-丙交酯膜,然后将其与聚吡咯混合,以FeCl3为氧化剂在气相中聚合吡咯单体,制成多孔导电复合膜。优化制备条件以获得具有受控孔径和孔隙率的膜。采用标准的四点技术研究了复合膜的直流电导率。研究了聚合时间和氧化剂浓度对复合膜电导率的影响。在优化的聚合条件下,某些复合膜的电导率接近10(-3)S cm(-1),而聚吡咯的负载量较低,介于2至3 wt。%之间。在37℃下,林格氏液的连续降解表明复合膜的电导率直到9周才显示出明显的变化,尽管自第二周结束以来可以看到复合膜的重量明显下降。 (C)2004 Elsevier B.V.保留所有权利。

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