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Functionalized Silicon Electrodes in Electrochemistry

机译:电化学中的官能化硅电极

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Avoiding the growth of SiOx has been an enduring task for the use of silicon as an electrode material in dynamic electrochemistry. This is because electrochemical assays become unstable when the SiOx levels change during measurements. Moreover, the silicon electrode can be completely passivated for electron transfer if a thick layer of insulating SiOx grows on the surface. As such, the field of silicon electrochemistry was mainly developed by electron-transfer studies in nonaqueous electrolytes and by applications employing SiOx-passivated silicon-electrodes where no DC currents are required to cross the electrode/electrolyte interface. A solution to this challenge began by functionalizing Si–H electrodes with monolayers based on Si–O–Si linkages. These monolayers have proven very efficient to avoid SiOx formation but are not stable for a long-term operation in aqueous electrolytes due to hydrolysis. It was only with the development of self-assembled monolayers based on Si–C linkages that a reliable protection against SiOx formation was achieved, particularly with monolayers based on α,ω-dialkynes. This review discusses in detail how this surface chemistry achieves such protection, the electron-transfer behavior of these monolayer-modified silicon surfaces, and the new opportunities for electrochemical applications in aqueous solution.
机译:避免SiOx的生长是在动态电化学中使用硅作为电极材料的持久任务。这是因为当SiOx水平在测量期间改变时,电化学测定变得不稳定。此外,如果在表面上生长厚的绝缘SiOx,则硅电极可以完全钝化用于电子传递。因此,硅电化学领域主要通过非水电解质的电子传递研究和采用SiOx钝化硅电极的应用而开发,其中不需要DC电流来交叉电极/电解质界面。基于Si-O-Si连杆的单层官能化,通过官能化Si-H电极来开始该挑战的解决方案。这些单层证明非常有效以避免SiOx形成,但由于水解而在水性电解质中的长期操作不稳定。仅通过基于Si-C连杆的自组装单层的开发,实现了对SiOx形成的可靠保护,特别是基于α,ω-Dialkynes的单层。本综述详细讨论了该地表化学如何实现这种保护,这些单层改性硅表面的电子转移行为,以及水溶液中电化学应用的新机遇。

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  • 作者单位

    School of Chemistry Australia Centre for NanoMedicine ARC Centre of Excellence in Convergent Bio-Nano Science and Technology University of New South Wales;

    School of Chemistry Australia Centre for NanoMedicine ARC Centre of Excellence in Convergent Bio-Nano Science and Technology University of New South Wales;

    School of Chemistry Australia Centre for NanoMedicine ARC Centre of Excellence in Convergent Bio-Nano Science and Technology University of New South Wales;

    School of Chemistry Australia Centre for NanoMedicine ARC Centre of Excellence in Convergent Bio-Nano Science and Technology University of New South Wales;

    School of Chemistry Australia Centre for NanoMedicine ARC Centre of Excellence in Convergent Bio-Nano Science and Technology University of New South Wales;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 物理化学计量;
  • 关键词

    silicon; silicon oxide; self-assembled monolayer; dialkyne; aqueous electrolyte; photoelectrochemistry;

    机译:硅;氧化硅;自组装单层;Dialkyne;水溶液;光电化学;

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