首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Fabrication of nanocomposite electrode based on Bi_(4_x)Nd_xTi)3O_(12) perovskite supported by silicon microchannel plates for high performance electrochemical capacitors
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Fabrication of nanocomposite electrode based on Bi_(4_x)Nd_xTi)3O_(12) perovskite supported by silicon microchannel plates for high performance electrochemical capacitors

机译:硅微通道板支撑的Bi_(4_x)Nd_xTi)3O_(12)钙钛矿基纳米复合电极的制备

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摘要

A novel self-standing Bi_(4_x)Nd_xTi)3O_(12) electrodes structure based on the three dimensional silicon micro-channel plates (Si-MCP) is proposed for electrochemical capacitors. In order to decrease electron transfer barrier and contact resistance, the Ni/Si-MCP compound materials were synthesized as current collectors by electroless plating. The Bi_(4_x)Nd_xTi)3O_(12) perovskite were distributed on the channel of Ni/Si-MCP compound structure by sol-gel techniques. The morphology and microstructure of as-synthesized mesopor-ous Bi_(4_x)Nd_xTi)3O_(12)(BNT) were characterized by scanning electron microscopy (SEM), X-ray diffraction (XRD). The electrodes have not only excellent capacitive performances, but also superior electrochemical stability. Owing to the formation of thin film morphology, porous structure, ordered channel and the intimate contact between the electroactive material and the current collector, the BNT/Ni/Si-MCP electrodes provide an enhancement of the kinetics by short transport/diffusion path lengths, timely accompanying of electrolyte and large specific surface areas, thus both high energy density and high power density are achieved. In particular, since the fabrication process is compatible with conventional silicon technology, the structure has immense potential as integrated supercapacitors.
机译:提出了一种基于三维硅微通道板(Si-MCP)的新型自立式Bi_(4_x)Nd_xTi)3O_(12)电极结构。为了降低电子传递势垒和接触电阻,通过化学镀合成了Ni / Si-MCP化合物材料作为集电器。通过溶胶-凝胶技术将Bi_(4_x)Nd_xTi)3 O_(12)钙钛矿分布在Ni / Si-MCP化合物结构的通道上。通过扫描电子显微镜(SEM),X射线衍射(XRD)表征了合成的介孔Bi_(4_x)Nd_xTi)3O_(12)(BNT)的形貌和微观结构。电极不仅具有出色的电容性能,而且具有出色的电化学稳定性。由于形成了薄膜形态,多孔结构,有序通道以及电活性材料与集电器之间的紧密接触,BNT / Ni / Si-MCP电极通过较短的传输/扩散路径长度来增强动力学,电解质和大的比表面积的及时伴随,因此实现了高能量密度和高功率密度。特别地,由于制造工艺与常规硅技术兼容,因此该结构作为集成超级电容器具有巨大的潜力。

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