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Impact of anode catalyst layer porosity on the performance of a direct formic acid fuel cell

机译:阳极催化剂层孔隙率对直接甲酸燃料电池性能的影响

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Direct formic acid fuel cells (DFAFCs) have attracted much attention in the last few years for portable electronic devices, due to their potential of being high efficiency power sources. They have the potential to replace the state-of-the-art batteries in cell phones, PDAs, and laptop computers if their power density and durability can be improved. In the present investigation, the influence of increased anode catalyst layer porosity on DFAFC power density performance is studied. Lithium carbonate (Li_2CO_3) was used as a pore-former in this study because of its facile and complete removal after catalyst layer fabrication. The anode catalyst layers presented herein contained unsupported Pt/Ru catalyst and Li_2CO_3 (in the range of 0-50wt%) bound with proton conducting ionomer. Higher DFAFC performance is obtained because of the increased porosity within the anode catalyst layer through enhanced reactant and product mass transport. The maximum power density of DFAFC increased by 25% when pore-former was added to the anode catalyst ink. The formic acid onset potential for the anode catalyst layer with 17.5 wt% pore-former was reduced by 30 mV. A constant phase element based equivalent-circuit model was used to investigate anode impedance spectra. Fitted values for the anode impedance spectra confirm the improvement in performance due to an increase in formic acid concentration inside the anode catalyst layer pores along with efficient transport of reactants and products.
机译:在过去的几年中,直接甲酸燃料电池(DFAFC)成为便携式电子设备的主要关注点,因为它们具有成为高效电源的潜力。如果可以提高功率密度和耐用性,它们有可能取代手机,PDA和膝上型计算机中的最新电池。在本研究中,研究了阳极催化剂层孔隙率增加对DFAFC功率密度性能的影响。碳酸锂(Li_2CO_3)在本研究中被用作成孔剂,因为在催化剂层制造之后,碳酸锂(Li_2CO_3)可以轻松,完全地去除。本文提出的阳极催化剂层包含未负载的Pt / Ru催化剂和与质子传导离聚物结合的Li_2CO_3(0-50wt%)。由于通过增强反应物和产物的质量传递而增加了阳极催化剂层内的孔隙率,因此获得了更高的DFAFC性能。当将成孔剂添加到阳极催化剂油墨中时,DFAFC的最大功率密度增加了25%。具有17.5重量%成孔剂的阳极催化剂层的甲酸起始电位降低了30mV。基于恒定相元素的等效电路模型用于研究阳极阻抗谱。阳极阻抗谱的拟合值证实了性能的改善,这归因于阳极催化剂层孔内甲酸浓度的增加以及反应物和产物的有效传输。

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