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Nanoscopic and Macro-Porous Carbon Nano-foam Electrodes with Improved Mass Transport for Vanadium Redox Flow Batteries

机译:纳米镜和宏观多孔碳纳米泡沫电极,具有改进的钒氧化还原流量电池的质量输送

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Although free-standing sheets of multiwalled carbon nanotubes (MWCNT) can provide interesting electrochemical and physical properties as electrodes for redox flow batteries, the full potential of this class of materials has not been accessible as of yet. The conventional fabrication methods produce sheets with micro-porous and meso-porous structures, which significantly resist mass transport of the electrolyte during high-current flow-cell operation. Herein, we developed a method to fabricate high performance macro-porous carbon nano-foam free standing sheets (Puffy Fibers, PF), by implementing a freeze-drying step into our low cost and scalable surface-engineered tape-casting (SETC) fabrication method, and we show the improvement in the performance attained as compared with a MWCNT sheet lacking any macro pores (Tape-cast, TC). We attribute the higher performance attained by our in-lab fabricated PF papers to the presence of macro pores which provided channels that acted as pathways for electrolytic transport within the bulk of the electrode. Moreover, we propose an electrolytic transport mechanism to relate ion diffusivity to different pore sizes to explain the different modes of charge transfer in the negative and the positive electrolytes. Overall, the PF papers had a high wettability, high porosity, and a large surface area, resulting in improved electrochemical and flow-cell performances.
机译:虽然多壁碳纳米管(MWCNT)的自卸式床单可以提供有趣的电化学和物理性质作为氧化还原流量电池的电极,但这类材料的全部潜力尚未易于访问。传统的制造方法生产具有微多孔和中间多孔结构的片材,其在高电流流动细胞操作期间显着抵抗电解质的质量传输。在此,我们开发了一种制造高性能宏观多孔碳纳米泡沫自由竖立片(浮纤维,PF)的方法,通过将冷冻干燥步骤实施到我们的低成本和可伸缩的表面设计的胶带铸造(SetC)制造中方法,与缺少任何宏观孔隙(胶带铸造TC)的MWCNT薄片相比,我们展示了所达到的性能的改善。我们将我们的实验室制造的PF纸实现的更高的性能归因于存在宏孔的存在,该宏孔提供作为电极在电极的大量电解输送的途径的通道。此外,我们提出了一种电解传递机制,使离子扩散率与不同的孔尺寸相关,以解释负电解质中的不同电荷转移模式。总的来说,PF纸具有高润湿性,高孔隙率和大表面积,导致电化学和流动细胞性能改善。

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