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Hierarchical electroactive polypyrrole-carbon nanotube composite microstructures by high resolution vat polymerization and soft template electropolymerization

机译:高分辨率VAT聚合和软模板电聚合的等级电活性聚吡咯 - 碳纳米管复合微观结构

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The Organic Mcchatronics and Smart Materials Laboratory has previously reported a photosensitive electroactive polypyrrole (PPy) composite resin. The photosensitivity of this resin overcame common issues associated with conjugated polymer device fabrication such that complex 3D structures can now be fabricated via light-based additive manufacturing methods. While this resin formulation enabled the fabrication of previously achievable structures and devices, it also required the introduction of copolymers bisphenol A cthoxylate dimethacrylate and polyethylene glycolmethyl ether methacrylate (BEMA-PEGMA). These copolymers improved the mechanical stability of 3D structures with a concomitant trade-off with the electroactive properties of the composite. This study investigates the introduction of PPy coated carbon nanotubes (CNTs) to improve the electrical and electrochemical properties of the composite material. The effect on performance of the composite was investigated by creating stable dispersions of PPy-CNTs at loading factors from 1 - 9 mg/mL directly into the pyrrole monomer. The electrical conductivity, electroactive response, and suitability for 3D fabrication of the composite has been assessed. 3D transducers fabricated using this new formulation are shown to exhibit feature resolution comparable to the original resin formulation. Finally, the improved electrical conductivity of the material is assessed to enable the post-hoc deposition of PPy microstructures via soft template electropolymerization. In this process, hydrogen gas bubbles are formed on the working electrode of 3-electrodc electrochemical cell, and upon subsequent application of a positive potential PPy is polymerized around the bubble templates. The resulting hierarchical PPy microstructures on the vat polymerized composite films are shown to increase surface area and consequently improve electroactive response.
机译:有机Mcchatronics和智能材料实验室先前已经报道了一种光敏电活性聚吡咯(PPY)复合树脂。该树脂的光敏性克服了与共轭聚合物装置制造相关的常见问题,使得现在可以通过基于光的添加剂制造方法制造复杂的3D结构。虽然该树脂配方使得能够制造先前可实现的结构和装置,但是还需要将共聚物双酚A二甲基丙烯酸酯和聚乙二醇甲基醚甲基丙烯酸酯(BEMA-PEGMA)的制备。这些共聚物通过复合材料的电活性性能改善了3D结构的机械稳定性。本研究调查了Ppy涂覆碳纳米管(CNT)的引入,以改善复合材料的电气化学性质。通过将10-9mg / ml的加载因子直接进入吡咯单体,通过在吡咯单体中产生稳定的Ppy-Cnts的稳定分散体来研究对复合材料性能的影响。已经评估了复合材料的3D制造的电导率,电活性响应和适合性。使用该新配方制造的3D换能器显示出与原始树脂配方相当的特征分辨率。最后,评估材料的改善的电导率,以通过软模板电聚合使PPY微结构的后HOC沉积能够。在该过程中,在3-Electrodc电化学电池的工作电极上形成氢气气泡,并且随后施加正电位PPY在气泡模板周围聚合。所得到的VAT聚合复合膜上的等级分层PPY微结构被示出为增加表面积并因此改善电活性反应。

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