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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Highly proton conductive, dense polybenzimidazole membranes with low permeability to vanadium and enhanced H2SO4 absorption capability for use in vanadium redox flow batteries
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Highly proton conductive, dense polybenzimidazole membranes with low permeability to vanadium and enhanced H2SO4 absorption capability for use in vanadium redox flow batteries

机译:高质子传导性致密的聚苯并咪唑膜,对钒的渗透性低,并具有增强的H2SO4吸收能力,可用于钒氧化还原液流电池

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摘要

H2SO4-doped dense polybenzimidazole (PBI) membranes based on poly[2,2'-(2-benzimidazolep- phenylene)-5,5'-bibenzimidazole] (BIpPBI) containing benzimidazole side groups were developed for use in vanadium redox flow batteries (VRFBs). BIpPBI was prepared by the polycondensation of 3,3'-diaminobenzidine with 2-benzimidazole terephthalic acid (BITA) in polyphosphoric acid. Many basic properties of BIpPBI were characterized and compared with conventional PBI (mPBI). The BIpPBI membrane has an entirely amorphous structure because of the presence of additional benzimidazole side groups, and the absorption of both H2SO4 (65 wt%) and water (46 wt%) was significantly improved compared to the mPBI membrane in a 4 M H2SO4 solution. The H2SO4-doped BIpPBI membrane has a low area resistance of 0.17 Omega cm(2) and significantly lowered permeability to vanadium ions (3.45 x 10(-8) cm(2) min(-1)). Finally, the VRFB assembled with BIpPBI had higher coulomb efficiencies (> 99%) and energy efficiencies (78-95%) than Nafion 115 under a wide range of current densities (20-100 mA cm(-2)). More importantly, the VRFB with BIpPBI exhibited stable cycling performance, running for 200 charge-discharge cycles with 4.0% energy efficiency decay and 81.5% capacity retention. Furthermore, the BIpPBI membrane was stable in a highly oxidizing VO2+ solution, demonstrating its outstanding physicochemical stability. All experimental results indicate that the dense BIpPBI membrane is a promising material for VRFB applications.
机译:基于含苯并咪唑侧基的聚[2,2'-(2-苯并咪唑对亚苯基)-5,5'-联苯并咪唑](BIpPBI)的H2SO4致密聚苯并咪唑(PBI)膜已开发用于钒氧化还原液流电池( VRFBs)。 BIpPBI是通过3,3'-二氨基联苯胺与2-苯并咪唑对苯二甲酸(BITA)在多磷酸中的缩聚反应制备的。对BIpPBI的许多基本特性进行了表征,并与常规PBI(mPBI)进行了比较。由于存在额外的苯并咪唑侧基,BIpPBI膜具有完全无定形的结构,与mPBI膜相比,在4 M H2SO4溶液中,H2SO4(65 wt%)和水(46 wt%)的吸收均得到了显着改善。 。掺杂H2SO4的BIpPBI膜具有0.17Ωcm(2)的低面积电阻,并显着降低了对钒离子的渗透性(3.45 x 10(-8)cm(2)min(-1))。最后,与BIpPBI组装的VRFB在宽电流密度(20-100 mA cm(-2))范围内比Nafion 115具有更高的库仑效率(> 99%)和能量效率(78-95%)。更重要的是,带有BIpPBI的VRFB表现出稳定的循环性能,可运行200次充放电循环,能量效率衰减为4.0%,容量保持率为81.5%。此外,BIpPBI膜在高度氧化的VO2 +溶液中稳定,证明了其出色的理化稳定性。所有实验结果表明,致密的BIpPBI膜是VRFB应用的有前途的材料。

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