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首页> 外文期刊>Nanoscale >Layer-by-layer grown scalable redox-active ruthenium-based molecular multilayer thin films for electrochemical applications and beyond
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Layer-by-layer grown scalable redox-active ruthenium-based molecular multilayer thin films for electrochemical applications and beyond

机译:逐层生长可伸缩redox-activeruthenium-based分子多层薄膜对于电化学应用程序

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摘要

Here we report the first study on the electrochemical energy storage application of a surface-immobilized ruthenium complex multilayer thin film with anion storage capability. We employed a novel dinuclear ruthenium complex with tetrapodal anchoring groups to build well-ordered redox-active multilayer coatings on an indium tin oxide (ITO) surface using a layer-by-layer self-assembly process. Cyclic voltammetry (CV), UV-Visible (UV-Vis) and Raman spectroscopy showed a linear increase of peak current, absorbance and Raman intensities, respectively with the number of layers. These results indicate the formation of well-ordered multilayers of the ruthenium complex on ITO, which is further supported by the X-ray photoelectron spectroscopy analysis. The thickness of the layers can be controlled with nanometer precision. In particular, the thickest layer studied (65 molecular layers and approx. 120 nm thick) demonstrated fast electrochemical oxidation/reduction, indicating a very low attenuation of the charge transfer within the multilayer. In situ-UV-Vis and resonance Raman spectroscopy results demonstrated the reversible electrochromic/redox behavior of the ruthenium complex multilayered films on ITO with respect to the electrode potential, which is an ideal prerequisite for e.g. smart electrochemical energy storage applications. Galvanostatic charge-discharge experiments demonstrated a pseudocapacitor behavior of the multilayer film with a good specific capacitance of 92.2 F g(-1) at a current density of 10 mu A cm(-2) and an excellent cycling stability. As demonstrated in our prototypical experiments, the fine control of physicochemical properties at nanometer scale, relatively good stability of layers under ambient conditions makes the multilayer coatings of this type an excellent material for e.g. electrochemical energy storage, as interlayers in inverted bulk heterojunction solar cell applications and as functional components in molecular electronics applications.
机译:这里,我们报告了第一个研究电化学储能应用surface-immobilized钌复杂多层薄膜与阴离子的存储能力。采用一种新颖的双核钌复杂tetrapodal构建秩序井然的锚定组铟锡redox-active多层涂层使用一层氧化物(ITO)表面自组装过程。紫外可见紫外)和拉曼光谱显示峰值电流的线性增加,吸光度和拉曼强度分别与数字的层。钌的秩序井然的多层膜在ITO,进一步支持的x射线光电子能谱分析。层的厚度可以控制纳米精度。层(65分子层和大约进行了研究。120纳米厚)演示了快速电化学氧化/还原,表明很低内的电荷转移的衰减多层。光谱分析结果证明了可逆的电致变色的钌/氧化还原行为复杂的伊藤对多层膜是一种理想的电极电位如智能电化学的先决条件能量存储应用程序。的充放电实验证明pseudocapacitor行为的多层膜良好的比电容为92.2 g F (1)的电流密度10μa厘米(2)和一个良好的循环稳定性。我们的原型实验,控制物理化学性质在纳米尺度,相对良好的环境下稳定层条件下的多层涂层一个优秀的材料如类型。电化学储能,夹层倒散装异质结太阳能电池应用程序和功能组件分子电子学的应用程序。

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