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Enhanced PEDOT adhesion on solid substrates with electrografted P(EDOT-NH2)

机译:电接枝的P(EDOT-NH2)增强了PEDOT在固体基材上的附着力

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Conjugated polymers, such as poly(3,4-ethylene dioxythiophene) (PEDOT), have emerged as promising materials for interfacing biomedical devices with tissue because of their relatively soft mechanical properties, versatile organic chemistry, and inherent ability to conduct both ions and electrons. However, their limited adhesion to substrates is a concern for in vivo applications. We report an electrografting method to create covalently bonded PEDOT on solid substrates. An amine-functionalized EDOT derivative (2,3-dihydrothieno[3,4-b][1,4]dioxin-2-yl)methanamine (EDOT-NH2), was synthesized and then electrografted onto conducting substrates including platinum, iridium, and indium tin oxide. The electrografting process was performed under slightly basic conditions with an overpotential of ~2 to 3 V. A nonconjugated, cross-linked, and well-adherent P(EDOT-NH2)–based polymer coating was obtained. We found that the P(EDOT-NH2) polymer coating did not block the charge transport through the interface. Subsequent PEDOT electrochemical deposition onto P(EDOT-NH2)–modified electrodes showed comparable electroactivity to pristine PEDOT coating. With P(EDOT-NH2) as an anchoring layer, PEDOT coating showed greatly enhanced adhesion. The modified coating could withstand extensive ultrasonication (1 hour) without significant cracking or delamination, whereas PEDOT typically delaminated after seconds of sonication. Therefore, this is an effective means to selectively modify microelectrodes with highly adherent and highly conductive polymer coatings as direct neural interfaces.
机译:共轭聚合物,例如聚(3,4-乙撑二氧噻吩)(PEDOT),因其相对较软的机械性能,通用的有机化学以及固有的传导离子和电子的能力而成为有前途的材料,可用于将生物医学设备与组织连接。但是,它们对基材的有限粘附性是体内应用的关注点。我们报告了一种电接枝方法,以在固体基质上产生共价键合的PEDOT。合成了一种胺官能化的EDOT衍生物(2,3-二氢噻吩并[3,4-b] [1,4]二恶-2-基)甲胺(EDOT-NH 2 ),然后进行电接枝在包括铂,铱和铟锡氧化物的导电基底上。电接枝过程在稍微碱性的条件下进行,超电势约为2至3V。获得了非共轭,交联且粘合良好的P(EDOT-NH 2 )基聚合物涂层。我们发现,P(EDOT-NH 2 )聚合物涂层没有阻止电荷通过界面传输。随后在P(EDOT-NH 2 )修饰的电极上进行的PEDOT电化学沉积显示出与原始PEDOT涂层相当的电活性。以P(EDOT-NH 2 )作为锚固层,PEDOT涂层显示出大大增强的附着力。改性的涂层可以经受住广泛的超声处理(1小时),而没有明显的破裂或分层,而PEDOT通常在超声几秒钟后分层。因此,这是一种有效的方法,可以选择性地修饰具有高附着力和高导电性聚合物涂层的微电极,作为直接的神经界面。

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