Cai Xiaoxia, Zhang Yuansong, Li Cong, Zhang Guotao, Wang Xiaotao, Zhang Xian, Wang Qiang, Wang Fuzhong
School of Materials Science & Engineering, Qilu University of Technology (Shandong Academy of Sciences), Jinan 250353, China.
State Key Laboratory of Biobased Material and Green Papermaking, Qilu University of Technology (Shandong Academy of Sciences), Jinan 250353, China.
Membranes (Basel). 2021 Mar 22;11(3):224. doi: 10.3390/membranes11030224.
In this study, we fabricated a composite polymer anion exchange membrane (AEM) with a sandwich structure. This prepared AEM demonstrated high ionic conductivity (0.25 Scm), excellent alkali resistance (8 M KOH), and good mechanical properties (tensile strength of 0.455 MPa and elongation at break of 82.13%). Here, degrease cotton (DC) treated with LiOH/urea aqueous solution was used and immersed into a coagulation bath to form a film. This film was immersed in acrylic acid (AA) monomers, and in-suit polymerization was carried out in the presence of KOH and an initiator. Finally, a composite polymer membrane with sandwich structure was achieved, in which the upper and bottom layers were mainly composed of polymerized AA (PAA) while the central layer was mainly composed of DC derived film. The central layer acted as a skeleton to improve the mechanical properties and alkali resistance. The top and bottom layers (PAA-rich layers) acted as OH- ion transport carriers, making basic cations migrate along the main chain of PAA. This newly developed composite membrane showed increased tensile strength and an elongation at break of 2.7 and 1.5 times, respectively, when compared to a control PAA/KOH AEM film. Furthermore, an electrochemical stability window of 2.0 V was measured via the cyclic voltammetry curve test, showing a wide electrochemical window and promising application in Zn-Air batteries.
在本研究中,我们制备了一种具有三明治结构的复合聚合物阴离子交换膜(AEM)。这种制备的AEM表现出高离子电导率(0.25 S/cm)、优异的耐碱性(8 M KOH)和良好的机械性能(拉伸强度为0.455 MPa,断裂伸长率为82.13%)。在此,使用经LiOH/尿素水溶液处理的脱脂棉(DC)并将其浸入凝固浴中形成薄膜。将该薄膜浸入丙烯酸(AA)单体中,并在KOH和引发剂存在下进行原位聚合。最终,获得了一种具有三明治结构的复合聚合物膜,其中上层和底层主要由聚合的AA(PAA)组成,而中间层主要由DC衍生膜组成。中间层作为骨架来提高机械性能和耐碱性。顶层和底层(富含PAA的层)作为OH - 离子传输载体,使碱性阳离子沿PAA主链迁移。与对照PAA/KOH AEM膜相比,这种新开发的复合膜的拉伸强度和断裂伸长率分别提高了2.7倍和1.5倍。此外,通过循环伏安曲线测试测得电化学稳定窗口为2.0 V,显示出较宽的电化学窗口,在锌空气电池中具有广阔的应用前景。