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首页> 外文期刊>Journal of solid state electrochemistry >Comparative Electrochemical Charge Storage Properties of Bulk and Nanoscale Vanadium Oxide Electrodes
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Comparative Electrochemical Charge Storage Properties of Bulk and Nanoscale Vanadium Oxide Electrodes

机译:块状和纳米级氧化钒电极的比较电化学电荷存储性能

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摘要

Vanadium oxide nanostructures have been widely researched as a cathode material for Li-ion batteries due to their layered structure and shorter Li+ diffusion path lengths, compared to the bulk material. Some oxides exhibit charge storage due to capacitive charge compensation, and many materials with cation insertion regions and rich surface chemistry have complex responses to lithiation. Herein, detailed analysis by cyclic voltammetry was used to distinguish the charge stored due to lithium intercalation processes from extrinsic capacitive effects for micron-scale bulk V2O5 and synthesized nano-scale vanadium oxide polycrystalline nanorods (poly-NRs), designed to exhibit multivalent surface oxidation states. The results demonstrate that at fast scan rates (up to 500 mV/s), the contributions due to diffusion-controlled intercalation processes for micron-scale V2O5 and nanoscale V2O3 are found to dominate irrespective of size and multivalent surface chemistry. At slow potential scan rates, a greater portion of the redox events are capacitive in nature for the polycrystalline nanorods. Low dimensional vanadium oxide structures of V2O5 or V2O3, with greater surface area do not automatically increase their (redox) pseudocapacitive behaviour significantly at any scan rate, even with multivalent surface oxidation states.
机译:相比于块状材料,氧化钒纳米结构由于其层状结构和更短的Li +扩散路径长度而被广泛研究为锂离子电池的正极材料。一些氧化物由于电容性电荷补偿而表现出电荷存储,许多具有阳离子插入区域和丰富表面化学性质的材料对锂化具有复杂的响应。本文中,通过循环伏安法进行了详细分析,以区分由于锂嵌入过程而存储的电荷与微米级块状V2O5和合成的纳米级氧化钒多晶纳米棒(poly-NRs)的非固有电容效应之间的区别,该纳米棒旨在表现出多价表面氧化状态。结果表明,在快速扫描速率(高达500 mV / s)下,无论尺寸大小和多价表面化学性质如何,微米级的V2O5和纳米级的V2O3的扩散控制插层过程的贡献均占主导地位。在低电位扫描速率下,多晶纳米棒的大部分氧化还原事件本质上是电容性的。具有较大表面积的V2O5或V2O3的低维钒氧化物结构在任何扫描速率下都不会自动显着增加其(氧化还原)拟电容行为,即使具有多价表面氧化态也是如此。

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