磷酸
铜
膜
质子交换膜燃料电池
兴奋剂
金属有机骨架
金属
无机化学
燃料电池
质子
化学
化学工程
材料科学
有机化学
生物化学
物理
光电子学
吸附
量子力学
工程类
作者
Siva Moorthy,Ragasudha Sudhakaran,Aparna Mahalingam,Pushparaj Hemalatha,Paradesi Deivanayagam
标识
DOI:10.1021/acs.iecr.4c02057
摘要
Fuel cells using proton exchange membrane (PEM) technology, which exhibit superior performance across a wide temperature range, have attracted significant interest in fuel cell vehicle development. Poly(2,2′- m -phenylene-5,5′-benzimidazole) (m-PBI) serves as a pivotal component in the construction of membranes for polymer electrolyte membrane fuel cells (PEMFCs). m-PBI was synthesized via the melt polycondensation method from its monomers. The structure and molecular weight of m-PBI were examined by proton Nuclear magnetic resonance (NMR) spectroscopy and gel permeation chromatography (GPC) techniques, respectively. Herein, we prepared a copper metal–organic framework (MOF) from its precursor and loaded it into the m-PBI membranes. Phosphoric acid (PA) doping strategically enhances the inherent properties of m-PBI, significantly improving the ionic conductivity within the PEM. The MOF loading improved PEM’s PA uptake with extended, uninterrupted proton transport channels. The membranes’ physicochemical attributes showed a direct correlation with MOF concentration, surpassing that of pristine m-PBI membranes. Due to their strong PA and water uptake abilities, the MOF-loaded m-PBI membranes exhibited enhanced conductivity over a wide range of temperatures (up to 80 °C) compared to the bare m-PBI membrane. At 80 °C, the PA-doped 3 wt % MOF-loaded m-PBI showed a peak power density of 371 mW/cm 2, while the PA-doped m-PBI had a power density of 255 mW/cm 2 . This innovative PEM outperforms conventional materials due to its superior design when compared with current m-PBI-based PEMFC systems.
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