Sharma Prem P, Tinh Vo Dinh Cong, Kim Dukjoon
School of Chemical Engineering, Sungkyunkwan University, Suwon 440-746, Gyeonggi, Korea.
Polymers (Basel). 2021 Mar 31;13(7):1111. doi: 10.3390/polym13071111.
A successful approach towards enhancement in ion cluster size of sulfonated poly (arylene ether sulfone) (SPAES)-based membranes has been successfully carried out by encapsulating basic pendent branches as side groups. Modified SPAES was synthesized by condensation polymerization followed by bromination with N-bromosuccinamide (NBS) and sulfonation by ring opening reaction. Various molar ratios of branched polyethyleneimine (PEI) were added to the SPAES and the developed polymer was designated as SPAES-x-PEI-y, where denoted the number of sulfonating acid group per polymer chain and y represents the amount of PEI concentration. Polymer synthesis was characterized by H-NMR (Nuclear magnetic resonance) and FT-IR (Fourier-transform infrared spectroscopy) analysis. A cumulative trend involving enhanced proton conductivity of the membranes with an increase in the molar ratio of PEI has been observed, clearly demonstrating the formation of ionic clusters. SPAES-140-PEI-3 membranes show improved proton conductivity of 0.12 Scm at 80 °C. Excellent chemical stability was demonstrated by the polymer with Fenton's test at 80 °C for 24 h without significant loss in proton conductivity, owing to the suitability of the synthesized hybrid membrane for electrochemical application. Moreover, a single cell degradation test was conducted at 80 °C showing a power density at a 140 mWcm value, proving the stable nature of synthesized membranes for proton exchange membrane fuel cell application.
通过将碱性侧链基团作为侧基进行封装,成功实现了提高基于磺化聚(亚芳基醚砜)(SPAES)的膜的离子簇尺寸的方法。通过缩聚反应合成改性SPAES,随后用N-溴代琥珀酰亚胺(NBS)进行溴化,并通过开环反应进行磺化。将不同摩尔比的支化聚乙烯亚胺(PEI)添加到SPAES中,所制备的聚合物命名为SPAES-x-PEI-y,其中x表示每个聚合物链上的磺酸基团数量,y表示PEI的浓度。通过核磁共振氢谱(H-NMR)和傅里叶变换红外光谱(FT-IR)分析对聚合物合成进行了表征。观察到随着PEI摩尔比的增加,膜的质子传导率呈现出累积增加的趋势,清楚地表明了离子簇的形成。SPAES-140-PEI-3膜在80°C时显示出0.12 S/cm的改进质子传导率。在80°C下进行芬顿试验24小时,聚合物表现出优异的化学稳定性,质子传导率没有明显损失,这归因于合成的复合膜适用于电化学应用。此外,在80°C下进行了单电池降解试验,显示功率密度为140 mW/cm²,证明了合成膜在质子交换膜燃料电池应用中的稳定性。