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Facile Synthesis of Porous Metal Oxide Nanotubes and Modified Nation Composite Membranes for Polymer Electrolyte Fuel Cells Operated under Low Relative Humidity

机译:低相对湿度下操作的聚合物电解质燃料电池多孔金属氧化物纳米管和改性国家复合膜的简便合成

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We describe a facile route to fabricate mesoporous metal oxide (TiO2, CeO2 and ZrO_(1.95)) nanotubes for efficient water retention and migration in a Nafion membrane operated in polymer electrolyte fuel cell under low relative humidity (RH). Porous TiO2 nanotubes (TNT), CeO2 nanotubes (CeNT), and ZrO_(1.95) (ZrNT) were synthesized by calcining electrospun polyacrylonitrile nano- fibers embedded with metal precursors. The nanofibers were prepared using a conventional single spinneret electrospinning technique under an ambient atmosphere. Their porous tubular morphology was observed by SEM and TEM analyses. HR- TEM results revealed a porous metal oxide wall composed of small particles joined together. The mesoporous structure of the samples was analyzed using BET. The tubular morphology and outstanding water absorption ability of the TNT, CeNT, and ZrNT fillers resulted in the effective enhancement of proton conductivity of Nafion composite membranes under both fully humid and dry conditions. Compared to a commercial membrane (Nafion, NRE-212) operated under 100% RH at 80 °C, the Nafion—TNT composite membrane delivered approximately 1.29 times higher current density at 0,6 V, Compared to the Nafion-TiO2 nanoparticles membrane, the Nafion—TNT membrane also generated higher current density at 0.6 V. Additionally, compared to a NRE-212 membrane operated under 50% RH at 80 °C, the Nafion—TNT composite membrane exhibited 3.48 times higher current density at 0.6 V. Under dry conditions (18% RH at 80 °C), the Nafion-TNT, Nafion-CeNT, and Nafion- ZrNT composite membranes exhibited 3.4, 2.4, and 2.9 times higher maximum power density, respectively, than the NRE-212 membrane. The remarkably high performance of the Nafion composite membrane was mainly attributed to the reduction of ohmic resistance by the mesoporous hygroscopic metal oxide nanotubes, which can retain water and effectively enhance water diffusion through the membrane.
机译:我们描述了一种简便的方法来制造介孔金属氧化物(TiO2,CeO2和ZrO_(1.95))纳米管,以有效地保水和在低相对湿度(RH)下在聚合物电解质燃料电池中运行的Nafion膜中迁移。通过煅烧嵌有金属前体的电纺聚丙烯腈纳米纤维,合成了多孔TiO2纳米管(TNT),CeO2纳米管(CeNT)和ZrO_(1.95)(ZrNT)。使用常规的单喷丝板静电纺丝技术在环境气氛下制备纳米纤维。通过SEM和TEM分析观察到它们的多孔管状形态。 HR-TEM结果表明,多孔金属氧化物壁由连接在一起的小颗粒组成。使用BET分析样品的中孔结构。 TNT,CeNT和ZrNT填料的管状形态和出色的吸水能力导致Nafion复合膜在完全潮湿和干燥条件下的质子传导率均得到有效提高。与在80°C下在100%RH下运行的商用膜(Nafion,NRE-212)相比,Nafion-TNT复合膜在0.6V下的电流密度约为Nafion-TiO2纳米颗粒膜的1.29倍, Nafion-TNT复合膜在0.6 V时也产生更高的电流密度。此外,与NRE-212膜在80°C和50%RH下工作相比,Nafion-TNT复合膜在0.6 V时显示出3.44倍的电流密度。干燥条件(在80°C下18%RH)下,Nafion-TNT,Nafion-CeNT和Nafion-ZrNT复合膜的最大功率密度分别是NRE-212膜的3.4、2.4和2.9倍。 Nafion复合膜的卓越性能主要归因于介孔吸湿性金属氧化物纳米管降低了欧姆电阻,该介孔可以保留水并有效增强水在膜中的扩散。

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