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A facile approach to prepare crosslinked polysulfone-based anion exchange membranes with enhanced alkali resistance and dimensional stability

机译:制备交联聚砜基阴离子交换膜,具有增强的耐碱性和尺寸稳定性

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Novel anion exchange membranes with enhanced ion exchange capacity, dimensional stability and alkali stability were prepared by a facile synthesis method. Internal crosslinking networks in the resulting membranes were achieved by reacting chloromethylated polysulfone with 4,4 '-trimethylene bis(1-methylpiperidine) (BMP), where BMP was used as both a quaternization reagent and crosslinker without requirement of post-functionalization. In order to evaluate the alkali resistance and dimension stability performance of the resulting membranes, the molar ratio of BMP in the resulting membranes was fixed at four different contents: 40%, 60%, 80% and 100%. The obtained membranes were accordingly denoted as CAPSF-N, in which N = 40, 60, 80 and 100, respectively. Due to the dense internal network structure and spatial conformation of the six-membered rings, the resulting CAPSF-N AEMs showed enhanced dimensional structures (at 60 degrees C, the water uptakes and swelling ratios of CAPSF-N were 8.42% to 14.84% and 2.32% to 5.93%, respectively, whereas those for the commercial AEM Neosepta AMX were 44.23% and 4.22%, respectively). In addition, after soaking in 1 M KOH solution at 60 degrees C for 15 days, the modified membranes exhibited excellent alkaline stability. The CAPSF-100 membrane showed the highest alkali stability (retained 85% of its original ion exchange capacity and 84% of its original OH- conduction after the alkaline stability test), whereas the non-crosslinked APSF broke into pieces. Additionally, compared to the commercial Neosepta AMX membrane under the same test conditions, the desalination efficiency of CAPSF-100 was enhanced, and the energy consumption was lower.
机译:通过容易合成方法制备具有增强的离子交换能力,尺寸稳定性和碱稳定性的新型阴离子交换膜。通过使氯甲基化的聚砜与4,4'-三甲基双(1-甲基哌啶)(BMP)反应来实现所得膜中的内部交联网络,其中BMP用作季铵化试剂和交联剂,而不需要官能化后官能化。为了评估所得膜的耐碱性和尺寸稳定性性能,在四种不同的液体中将BMP的摩尔比固定在不同含量:40%,60%,80%和100%。因此,所获得的膜表示为CAPSF-N,其中N = 40,60,80和100分别。由于内部网络结构和六元环的空间构象,所得到的CAPSF-N AEM显示出增强的尺寸结构(在60℃下,CAPSF-N的水上吸水和溶胀比率为8.42%至14.84%分别为2.32%至5.93%,而商业AEM Neosepta AMX分别为44.23%和4.22%)。另外,在60℃下浸泡在1M KOH溶液中15天后,改性膜表现出优异的碱性稳定性。 CAPSF-100膜显示出最高的碱稳定性(在碱性稳定性试验后保留其原始离子交换容量的85%,占其原始OH导通的84%,而非交联APSF突破。另外,与在相同的试验条件下的商业新肌氨酸AMX膜相比,增强了CAPSF-100的脱盐效率,能量消耗较低。

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    《RSC Advances》 |2019年第62期|共12页
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  • 正文语种 eng
  • 中图分类 化学;
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