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首页> 外文期刊>Journal of power sources >Membrane patterned by pulsed laser micromachining for proton exchange membrane fuel cell with sputtered ultra-low catalyst loadings
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Membrane patterned by pulsed laser micromachining for proton exchange membrane fuel cell with sputtered ultra-low catalyst loadings

机译:溅射激光超低负载下质子交换膜燃料电池的脉冲激光微加工图案化膜

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摘要

Proton exchange membranes were nano- and micro-patterned on their cathode side by pressing them against stainless steel molds previously irradiated by a Ti:Sapphire femtosecond laser. The membranes were associated to ultra-low loaded thin catalytic layers (25 mu g(pt) cm(-2)) prepared by plasma magnetron sputtering. The Pt catalyst was sputtered either on the membrane or on the porous electrode. The fuel cell performance in dry conditions were found to be highly dependent on the morphology of the membrane surface. When nanometric ripples covered by a Pt catalyst were introduced on the surface of the membrane, the fuel cell outperformed the conventional one with a flat membrane. By combining nano- and micro-patterns (nanometric ripples and 11-24 mu m deep craters), the performance of the cells was clearly enhanced. The maximum power density achieved by the fuel cell was multiplied by a factor of 3.6 (at 50 degrees C and 3 bar): 438 mW cm(-2) vs 122 mW cm(-2). This improvement is due to high catalyst utilization with a high membrane conductivity. When Pt is sputtered on the porous electrode (and not on the membrane), the contribution of the patterned membrane to the fuel cell efficiency was less significant, except in the presence of nanometric ripples. This result suggests that the patterning of the membrane must be consistent with the way the catalyst is synthesized, on the membrane or on the porous electrode. (C) 2015 Elsevier B.V. All rights reserved.
机译:通过将质子交换膜压在事先通过Ti:Sapphire飞秒激光辐照的不锈钢模具上,在其阴极侧进行纳米和微型图案化处理。膜与通过等离子磁控溅射制备的超低负载薄催化层(25μg(pt)cm(-2))相关。将Pt催化剂溅射到膜上或多孔电极上。发现在干燥条件下的燃料电池性能高度依赖于膜表面的形态。当在膜表面上引入由Pt催化剂覆盖的纳米波纹时,燃料电池的性能优于传统的带有平膜的燃料电池。通过结合纳米和微观模式(纳米波纹和11-24微米深的陨石坑),细胞的性能明显提高。燃料电池获得的最大功率密度乘以3.6的系数(在50摄氏度和3巴下):438 mW cm(-2)对122 mW cm(-2)。该改进归因于高催化剂利用率和高膜电导率。当将Pt溅射在多孔电极上(而不是膜上)时,除了存在纳米级纹波外,图案化膜对燃料电池效率的贡献不大。该结果表明,在膜上或在多孔电极上,膜的图案必须与催化剂的合成方式一致。 (C)2015 Elsevier B.V.保留所有权利。

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