首页> 外文会议>ASME conference on smart materials, adaptive structures and intelligent systems;SMASIS2011 >POLYPYRROLE BRIDGE AS A SUPPORT FOR ALAMETHICIN-RECONSTITUTED PLANAR BILAYER LIPID MEMBRANES
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POLYPYRROLE BRIDGE AS A SUPPORT FOR ALAMETHICIN-RECONSTITUTED PLANAR BILAYER LIPID MEMBRANES

机译:聚吡咯桥作为阿拉伯霉素重构的平面双层脂质膜的支持

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Conducting polymer actuators and sensors utilize electrochemical reactions and associated ion transport at the polymer-electrolyte interface for their engineering function. Similarly, a bioderived active material utilizes ion transport through a protein and across a bilayer lipid membrane for sensing and actuation functions. Inspired by the similarity in ion transport process in a bilayer lipid membrane (BLM) and conducting polymers, we propose to build an integrated ionic device in which the ion transport through the protein in the bilayer lipid membrane regulates the electrolytic and mechanical properties of the conducting polymer. This article demonstrates the fabrication and characterization of a DPhPC planar BLM reconstituted with alamethicin and supported on a polypyrrole bridge measuring 100 μm × 500 μm and formed across micro-fabricated gold pads. The assembly is supported on silicon dioxide coated wafers and packaged into an electronic-ionic package for electrochemical characterization. The various ionic components in the integrated ionic device are characterized using electrical impedance spectroscopy (EIS), cyclic voltammetry (CV), and chronoamperometry (CA) measurements. The results from our experimental studies demonstrate the procedure to fabricate a rugged electro active polymer supported BLM that will serve as a platform for chemical, bioelectrical sensing and VOC detection.
机译:导电聚合物致动器和传感器利用电化学反应以及在聚合物-电解质界面处的相关离子传输来实现其工程功能。类似地,生物衍生的活性材料利用离子传输穿过蛋白质并穿过双层脂质膜的功能,以实现传感和驱动功能。受双层脂质膜(BLM)和导电聚合物中离子迁移过程相似性的启发,我们建议构建一个集成的离子设备,其中通过双层脂质膜中蛋白质的离子迁移可调节导电的电解和机械性能聚合物。本文演示了用阿乐美辛重构并支撑在尺寸为100μm×500μm的聚吡咯桥上并在微加工金焊盘上形成的DPhPC平面BLM的制备和表征。该组件被支撑在涂有二氧化硅的晶片上,并包装到电子离子包装中以进行电化学表征。集成离子设备中的各种离子组件使用电阻抗光谱(EIS),循环伏安法(CV)和计时电流法(CA)测量来表征。我们的实验研究结果表明,制造坚固的电活性聚合物支撑的BLM的程序将用作化学,生物电传感和VOC检测的平台。

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