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Anode structure design for the high-performance anion-exchange membrane direct glucose fuel cell

机译:高性能阴离子交换膜直接葡萄糖燃料电池的阳极结构设计

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Glucose has proven to be a promising fuel for renewable and sustainable fuel cells due to its high energy density. The anion-exchange membrane (AEM) direct glucose fuel cell (DGFC) attracted lots of attentions because of the higher performance than the conventional microbial fuel cell. Among the factors affecting the performance of the DGFC, the anode structure plays an important role, but presently, a general understanding of the anode electrode design is far less understood. In this work, anode structure was designed for the high-performance AEM DGFC, including the configurations of the anode electrode and the compositions of both the micro-porous layer (MPL) and catalyst layer(CL). The experimental results revealed that the fabrication of the anode electrode with catalyzed diffusion medium (CDM) method yielded better performance than that with catalyst-coated membrane (CCM) method because of lower resistance of the mass transport. It was found that the addition of an ultra-thin MPL (0.3 mg cm~(-2) carbon loading) between backing layer (BL) and CL improved the cell performance due to it can facilitate the electron transfer. In addition, the MEA with PTFE binder in the anode CL showed a better cell performance than that with 12 binder due to the enhanced mass transport and larger active surface area.
机译:由于其高能量密度,葡萄糖已被证明是可再生和可持续燃料电池的有希望的燃料。阴离子交换膜(AEM)直接葡萄糖燃料电池(DGFC)吸引了大量的关注,因为比传统的微生物燃料电池更高。在影响DGFC性能的因素中,阳极结构起着重要作用,但目前,对阳极设计的一般理解远不太了解。在这项工作中,设计用于高性能AEM DGFC的阳极结构,包括阳极电极的构成和微多孔层(MPL)和催化剂层(C1)的组成。实验结果表明,由于催化剂涂覆的膜(CCM)法,阳极电极的制造优于催化剂涂覆的膜(CCM)方法,因为大致传输的电阻较低。结果发现,在背衬层(BL)和CL之间的增加的超薄MPL(0.3mg cm〜(-2)碳加载)改善了电池性能,这是促进电子转移。另外,由于增强的质量传输和较大的活性表面积,阳极C1中的PTFE粘合剂的MEA具有比具有12个粘合剂的细胞性能更好。

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