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Nanoscale electrochemical patterning reveals the active sites for catechol oxidation at graphite surfaces

机译:纳米级电化学图案揭示了石墨表面邻苯二酚氧化的活性位

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摘要

Graphite-based electrodes (graphite, graphene, and nanotubes) are used widely in electrochemistry, and there is a long-standing view that graphite step edges are needed to catalyze many reactions, with the basal surface considered to be inert. In the present work, this model was tested directly for the first time using scanning electrochemical cell microscopy reactive patterning and shown to be incorrect. For the electro-oxidation of dopamine as a model process, the reaction rate was measured at high spatial resolution across a surface of highly oriented pyrolytic graphite. Oxidation products left behind in a pattern defined by the scanned electrochemical cell served as surface-site markers, allowing the electrochemical activity to be correlated directly with the graphite structure on the nanoscale. This process produced tens of thousands of electrochemical measurements at different locations across the basal surface, unambiguously revealing it to be highly electrochemically active, with step edges providing no enhanced activity. This new model of graphite electrodes has significant implications for the design of carbon-based biosensors, and the results are additionally important for understanding electrochemical processes on related sp2-hybridized materials such as pristine graphene and nanotubes.
机译:石墨基电极(石墨,石墨烯和纳米管)在电化学中得到广泛使用,并且长期存在的观点是,需要石墨台阶边缘来催化许多反应,而基础表面被认为是惰性的。在目前的工作中,首次使用扫描电化学电池显微镜反应性图案直接对该模型进行了测试,结果表明该模型是错误的。对于作为模型过程的多巴胺的电氧化,以高空间分辨率在高度取向的热解石墨表面上测量反应速率。以被扫描的电化学电池定义的图案留下的氧化产物用作表面位点标记,从而使电化学活性与纳米级的石墨结构直接相关。该过程在整个基底表面的不同位置产生了数以万计的电化学测量结果,明确表明它具有高度的电化学活性,台阶边缘没有提供增强的活性。这种新的石墨电极模型对于碳基生物传感器的设计具有重要意义,并且结果对于理解相关的sp2杂交材料(如原始石墨烯和纳米管)的电化学过程也非常重要。

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