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首页> 外文期刊>Journal of Applied Polymer Science >Mild sulfonated polyether ketone ether ketone ketone incorporated polysulfone membranes for microbial fuel cell application
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Mild sulfonated polyether ketone ether ketone ketone incorporated polysulfone membranes for microbial fuel cell application

机译:温和的磺化聚醚酮醚醚酮酮掺入微生物燃料电池应用的聚砜膜

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摘要

To address the impediments of low power generation of Nafion, which is the main hurdle in the commercialization of microbial fuel cells (MFC), the current study focuses on developing a new PEM for MFC from mild sulfonation of PEKEKK with relatively improved physiochemical properties. In this study, mild post sulfonation of a polyether ketone ether ketone ketone (PEKEKK) has been successfully achieved using 98% H2SO4 at 90 degrees C under reflux. 5%-30% (wt%) of sulfonated PEKEKK (SPEKEKK) loaded polysulfone (PSU) composite membranes were fabricated via a solution casting method. Ingeminating evidence of the sulfonation and structure of sulfonated polymer was proved by H-1 NMR peaks integration data and FTIR, respectively. The addition of SPEKEKK to PSU showed significant improvement in conductivity owing to the availability of more protonated sites (-SO3H) and water mediated pathways for the conduction of protons. The composite membrane containing 30 wt% SPEKEKK exhibits the highest conductivity of 0.12 S/cm at 90 degrees C. The water uptakes and swelling ratio of the composite membranes are all higher than that of the pristine PSU membrane and show an increasing trend with increasing SPEKEKK content, thus validating the availability of water domains. Meanwhile, the lowest initial decomposition temperatures assigned to sulfonic acid groups and main chain degradation of the polysulfone/polyether ketone ether ketone ketone (PSU/SPEKEKK) composite membranes occurred at similar to 300 degrees C and similar to 500 degrees C respectively, which reflects an excellent thermal stability property. The experimental results indicate that the PSU/SPEKEKK membrane has the potential to greatly enhance the efficiency of MFCs.
机译:为解决微生物燃料电池(MFC)商业化过程中的主要障碍Nafion的低发电障碍,目前的研究重点是从PEKEKK的轻度磺化中开发一种新的用于MFC的PEM,其理化性质相对改善。在这项研究中,使用98%的H2SO4在90℃回流下成功地实现了聚醚酮醚酮酮酮(PEKEKK)的温和后磺化。采用溶液浇铸法制备了5%-30%(wt%)的磺化PEKEKK(SPEKEKK)负载聚砜(PSU)复合膜。H-1核磁共振峰积分数据和FTIR分别证实了磺化聚合物的磺化和结构。向PSU中添加SPEKEKK后,由于有更多的质子化位点(-SO3H)和水介导的质子传导途径,电导率显著提高。含有30 wt%SPEKEKK的复合膜在90℃时表现出最高的电导率0.12 S/cm。复合膜的吸水率和溶胀率均高于原始PSU膜,并且随着SPEKEKK含量的增加呈现出增加的趋势,从而验证了水畴的可用性。同时,聚砜/聚醚酮醚酮酮酮(PSU/SPEKEKK)复合膜的磺酸基和主链降解的最低初始分解温度分别发生在接近300℃和接近500℃的温度下,这反映了良好的热稳定性。实验结果表明,PSU/SPEKEKK膜具有显著提高MFC效率的潜力。

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