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Coatings of Nanostructured Pristine Graphene-IrOx Hybrids for Neural Electrodes: Layered Stacking and the role of non-oxygenated Graphene

机译:纳米结构原始石墨烯-IrOx杂化物用于神经电极的涂层:分层堆叠和非氧化石墨烯的作用

摘要

The need to enhance charge capacity in neural stimulation-electrodes is promoting the formation of new materials and coatings. Among all the possible types of graphene, pristine graphene prepared by graphite electrochemical exfoliation, is used in this work to form a new nanostructured IrOx-graphene hybrid (IrOx-eG). Graphene is stabilized in suspension by IrOx nanoparticles without surfactants. Anodic electrodeposition results in coatings with much smaller roughness than IrOx-graphene oxide. Exfoliated pristine graphene (eG), does not electrodeposit in absence of iridium, but IrOx-nanoparticle adhesion on graphene flakes drives the process. IrOx-eG has a significantly different electronic state than graphene oxide, and different coordination for carbon. Electron diffraction shows the reflection features expected for graphene. IrOx 1-2 nm cluster/nanoparticles are oxohydroxo-species and adhere to 10 nm graphene platelets. eG induces charge storage capacity values five times larger than in pure IrOx, and if calculated per carbon atom, this enhancement is one order magnitude larger than the induced by graphene oxide. IrOx-eG coatings show optimal in vitro neural cell viability and function as cell culture substrates. The fully straightforward electrochemical exfoliation and electrodeposition constitutes a step towards the application of graphene in biomedical systems, expanding the knowledge of pristine graphene vs. graphene oxide, in bioelectrodes. © 2015 Elsevier B.V.
机译:增强神经刺激电极中电荷容量的需求正在促进新材料和涂层的形成。在所有可能的石墨烯类型中,通过石墨电化学剥离制备的原始石墨烯被用于这项工作中,以形成一种新的纳米结构的IrOx-石墨烯杂化体(IrOx-eG)。石墨烯可通过不含表面活性剂的IrOx纳米颗粒稳定在悬浮液中。阳极电沉积导致涂层的粗糙度比IrOx-石墨烯氧化物小得多。剥落的原始石墨烯(eG)在没有铱的情况下不会电沉积,但是IrOx-纳米颗粒在石墨烯薄片上的附着力推动了这一过程。 IrOx-eG的电子态与氧化石墨烯显着不同,并且碳的配位也不同。电子衍射显示出石墨烯预期的反射特征。 IrOx 1-2 nm团簇/纳米颗粒是氧代羟基物种,并附着在10 nm石墨烯血小板上。 eG的电荷存储容量值是纯IrOx的五倍,如果按碳原子计算,则这种增强比氧化石墨烯的电荷存储容量大一个数量级。 IrOx-eG涂层显示出最佳的体外神经细胞活力,并充当细胞培养底物。完全直接的电化学剥离和电沉积构成了将石墨烯应用于生物医学系统的一步,从而扩大了生物电极中原始石墨烯与氧化石墨烯的知识。 ©2015 Elsevier B.V.

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