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Mechanically robust, photopatternable conductive hydrogel composites

机译:机械坚固,可光图案化的导电水凝胶复合材料

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Electrically conductive hydrogels (ECH) which are composites of hydrogels and conducting polymers, exhibit a powerful combination of biocompatibility and conductivity. They combine the high hydration and soft mechanical nature of hydrogel networks, with the electrochemical functionality of conducting components allowing precise control of properties. Interest in these materials has increased recently for applications in tissue engineering, biosensing, and flexible and implantable bioelectronics. Here, we demonstrate a dispersion of poly(3,4-ethylenedioxythiophene):poly(styrene sulfonate) (PEDOT:PSS) in a photocurable poly(ethylene glycol)-diacrylate (PEG-DA) matrix to form functional hydrogels via a facile, fully aqueous, photopolymerization process. We report on effect of various compositions of the conducting polymer, tuning of mechanical and electrochemical properties, and the ability to micropattern the composite using photolithography. The electrical properties of the ECH are characterized by cyclic voltammetry, four-point probe, and conductive atomic force microscopy to reveal the competitive properties of the composite, with minimal leaching and stability over time. We further show how minute amounts of graphene dopant can be used to engineer mechanical and electrochemical properties. Overall, the graphene-hydrogel-conducting polymer composite structure enables optimization of various properties by synergistically integrating the electrochemical and mechanical properties of graphene and the PEDOT:PSS, with the biocompatibility and micropatteming of the soft hydrogel matrix.
机译:导电水凝胶(ECH)是水凝胶和导电聚合物的复合材料,具有生物相容性和导电性的强大组合。它们结合了水凝胶网络的高水合性和柔软的机械特性,以及导电成分的电化学功能,可以精确控制性能。这些材料的兴趣最近在组织工程,生物传感以及柔性和可植入生物电子学中的应用不断增长。在这里,我们展示了聚(3,4-乙撑二氧噻吩):聚(苯乙烯磺酸盐)(PEDOT:PSS)在可光固化的聚(乙二醇)-二丙烯酸酯(PEG-DA)基质中的分散,可通过一种简便的方法形成功能性水凝胶,全水性,光聚合过程。我们报告了导电聚合物的各种成分的影响,机械和电化学性能的调整以及使用光刻技术对复合材料进行微图案化的能力。 ECH的电学特性通过循环伏安法,四点探针和导电原子力显微镜进行表征,以揭示复合材料的竞争特性,同时具有最小的浸出和随时间的稳定性。我们进一步展示了如何使用微量的石墨烯掺杂剂来设计机械和电化学性能。总体而言,通过将石墨烯和PEDOT:PSS的电化学和机械性能与软水凝胶基质的生物相容性和微图案化协同整合,可以使导电石墨烯-水凝胶的聚合物复合结构实现各种性能的优化。

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