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New Carbon Nanofiber Composite Materials Containing Lanthanides and Transition Metals Based on Electrospun Polyacrylonitrile for High Temperature Polymer Electrolyte Membrane Fuel Cell Cathodes

机译:基于静电纺聚丙烯腈的含镧系元素和过渡金属的新型碳纳米纤维复合材料用于高温聚合物电解质膜燃料电池阴极

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摘要

Electrospinning of polyacrylonitrile/DMF dopes containing salts of nickel, cobalt, zirconium, cerium, gadolinium, and samarium, makes it possible to obtain precursor nanofiber mats which can be subsequently converted into carbon nanofiber (CNF) composites by pyrolysis at 1000–1200 °C. Inorganic additives were found to be uniformly distributed in CNFs. Metal states were investigated by transmission electron microscopy and X-ray photoelectron spectroscopy (XPS). According to XPS in CNF/Zr/Ni/Gd composites pyrolyzed at 1000 °C, nickel exists as Ni and as Ni , gadolinium as Gd , and zirconium as Zr . If CNF/Zr/Ni/Gd is pyrolyzed at 1200 °C, nickel exists only as Ni . For CNF/Sm/Co composite, samarium is in Sm form when cobalt is not found on a surface. For CNF/Zr/Ni/Ce composite, cerium exists both as Ce and as Ce . Composite CNF mats were platinized and tested as cathodes in high-temperature polymer electrolyte membrane fuel cell (HT-PEMFC). Such approach allows to introduce Pt–M and Pt–MO into CNF, which are more durable compared to carbon black under HT-PEMFC operation. For CNF/Zr/Ni/Gd composite cathode, higher performance in the HT-PEMFC at I >1.2 A cm is achieved due to elimination of mass transfer losses in gas-diffusion electrode compared to commercial Celtec P1000.
机译:包含镍,钴,锆,铈,g和sa的盐的聚丙烯腈/ DMF涂料的电纺丝,使得获得前驱体纳米纤维垫成为可能,随后可通过在1000–1200°C下热解将其转化为碳纳米纤维(CNF)复合材料。 。发现无机添加剂均匀分布在CNF中。通过透射电子显微镜和X射线光电子能谱(XPS)研究了金属态。根据XPS在1000°C下热解的CNF / Zr / Ni / Gd复合材料中,镍以Ni和Ni的形式存在,,以Gd的形式存在,锆以Zr的形式存在。如果CNF / Zr / Ni / Gd在1200°C下热解,则镍仅以Ni的形式存在。对于CNF / Sm / Co复合材料,当在表面上未发现钴时,sa为Sm形式。对于CNF / Zr / Ni / Ce复合材料,铈以Ce和Ce的形式存在。将复合CNF垫镀铂并在高温聚合物电解质膜燃料电池(HT-PEMFC)中作为阴极进行测试。这种方法允许将Pt-M和Pt-MO引入CNF,与HT-PEMFC操作下的炭黑相比,它们更加耐用。对于CNF / Zr / Ni / Gd复合阴极,与商用Celtec P1000相比,由于消除了气体扩散电极中的传质损失,HT-PEMFC在I> 1.2 A cm处实现了更高的性能。

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