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Using Electrospinning-Based Carbon Nanofiber Webs for Methanol Crossover Control in Passive Direct Methanol Fuel Cells

机译:使用基于静电纺的碳纳米纤维网用于被动直接甲醇燃料电池中的甲醇穿越控制

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摘要

Methanol crossover (MCO) significantly affects the performance of a direct methanol fuel cell (DMFC). In order to reduce its effect, this study presents in-house carbon nanofiber webs (CNWs) used as a porous methanol barrier for MCO control in a passive DMFC. The CNW is made from polyacrylonitrile (PAN) by using electrospinning and heat treatment. The impacts of PAN concentration and carbonizing temperature on the material properties are considered. The concentration of PAN has a great effect on the micro structures of the CNWs since a higher concentration of PAN leads to a larger nanofiber diameter and lower porosity. A higher carbonizing temperature helps promote the sample conductivity. The use of CNWs has twofold effects on the cell performance. It helps significantly enhance the cell performance, especially at a low methanol concentration due to its balanced effect on reactant and product management. There is an increase in peak power density of up to 53.54% when the CNW is used, in contrast with the conventional DMFC at 2 mol/L. The dynamic and constant-load performances of the fuel cell based on CNWs are also investigated in this work.
机译:甲醇交换(MCO)会严重影响直接甲醇燃料电池(DMFC)的性能。为了降低其影响,本研究提出了内部碳纳米纤维网(CNW),用作被动DMFC中MCO控制的多孔甲醇屏障。 CNW由聚丙烯腈(PAN)通过静电纺丝和热处理制成。考虑了PAN浓度和碳化温度对材料性能的影响。 PAN的浓度对CNW的微观结构影响很大,因为PAN的浓度越高,纳米纤维的直径越大,孔隙率越低。较高的碳化温度有助于提高样品的电导率。 CNW的使用对电池性能有双重影响。由于其对反应物和产物管理的平衡作用,它有助于显着提高电池性能,尤其是在低甲醇浓度下。与使用2 mol / L的传统DMFC相比,使用CNW时,峰值功率密度提高了53.54%。在这项工作中,还研究了基于CNW的燃料电池的动态和恒定负载性能。

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