首页> 外文期刊>RSC Advances >Acid catalysed cross-linking of poly vinyl alcohol (PVA) by glutaraldehyde: effect of crosslink density on the characteristics of PVA membranes used in single chambered microbial fuel cells
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Acid catalysed cross-linking of poly vinyl alcohol (PVA) by glutaraldehyde: effect of crosslink density on the characteristics of PVA membranes used in single chambered microbial fuel cells

机译:戊二醛酸催化聚乙烯醇(PVA)的交联:交联密度对单室微生物燃料电池中PVA膜特性的影响

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In the present study, acid catalysed cross-linking of poly vinyl alcohol (PVA) with varying concentrations of glutaraldehyde was analyzed and the cross-linked PVAs were utilized as membrane separators in single chambered microbial fuel cells (MFCs). PVA with varying concentrations (1, 2, 4 and 6%) of glutaraldehyde has resulted in a respective 2.8, 5.6, 32 and 34% of degree of cross-linking in PVA1, PVA2, PVA3 and PVA4 membranes. Due to the reduction of available free volume in membranes, progressive improvements in membrane rigidity with impeded membrane porosity were observed with increasing cross-link densities. In succession, proton conductivities of 7.53 x 10(-3), 8.4 x 10(-4), 1.2 x 10(-4) and 4.5 +/- 10(-5) S cm(-1) were observed from the respective PVA1, PVA2, PVA3, and PVA4 membranes. The increased cross-link density enhanced the mechanical strength but reduced other membrane properties such as water uptake and proton conductivities of the membranes. Further, the cast membranes were assembled as MEAs in open air cathode MFCs where, a maximum power and current density of 119.13 +/- 6 mW m(-2) and 447.81 +/- 18 mA m(-2) were observed from PVA3 fitted MFC, using mixed firmicutes as biocatalysts. With increased cross-link density, higher ohmic resistances were observed in MFCs, but due to lower oxygen diffusion in the anode, increased performance was observed from highly cross-linked membranes. Electrogenic firmicutes revealed an overall similar to 93.45% of COD removal in 27 days of operation, indicating the efficiency of the respective membranes as separators in MFCs. In general, the study depicts the relevance of different acid catalysed cross-linked PVA membranes in bio-energy conversion from microbial fuel cells.
机译:在本研究中,分析了酸催化的聚乙烯醇(PVA)与不同浓度的戊二醛的交联,并将交联的PVA用作单室微生物燃料电池(MFC)中的膜分离器。具有不同浓度(1、2、4和6%)戊二醛的PVA在PVA1,PVA2,PVA3和PVA4膜中分别产生了2.8%,5.6%,32%和34%的交联度。由于膜中可用自由体积的减少,随着交联密度的增加,观察到了膜刚度的逐步提高以及膜孔隙率的降低。依次从各自观察到质子电导率分别为7.53 x 10(-3),8.4 x 10(-4),1.2 x 10(-4)和4.5 +/- 10(-5)S cm(-1) PVA1,PVA2,PVA3和PVA4膜。增加的交联密度提高了机械强度,但降低了其他膜的性能,例如膜的吸水率和质子传导率。此外,将流延膜作为MEA组装在露天阴极MFC中,其中从PVA3观察到最大功率和电流密度分别为119.13 +/- 6 mW m(-2)和447.81 +/- 18 mA m(-2)。使用混合的硬脂酸酯作为生物催化剂安装了MFC。随着交联密度的增加,在MFC中观察到更高的欧姆电阻,但是由于阳极中较低的氧扩散,从高交联的膜中观察到了性能的提高。电致固化剂显示,在运行27天中,COD的去除率总体接近93.45%,表明在MFC中作为分离器的各个膜的效率。通常,该研究描述了不同的酸催化的交联PVA膜在微生物燃料电池的生物能转化中的相关性。

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