Zhao Di, Xu Jinyun, Sun Yu, Li Minjing, Zhong Guoqiang, Hu Xudong, Sun Jiefang, Li Xiaoyun, Su Han, Li Ming, Zhang Ziqi, Zhang Yu, Zhao Liping, Zheng Chunming, Sun Xiaohong
School of Chemical Engineering, Tianjin Key Laboratory of Green Chemical Technology and Process Engineering, State Key Laboratory of Separation Membrane and Membrane Processes, Tiangong University, Tianjin 300387, China.
School of Materials Science and Engineering, Key Laboratory of Advanced Ceramics and Machining Technology, Ministry of Education, Tianjin University, Tianjin 300072, China.
Nanomaterials (Basel). 2022 Aug 21;12(16):2874. doi: 10.3390/nano12162874.
Bipolar membranes, a new type of composite ion exchange membrane, contain an anion exchange layer, a cation exchange layer and an interface layer. The interface layer or junction is the connection between the anion and cation exchange layers. Water is dissociated into protons and hydroxide ions at the junction, which provides solutions to many challenges in the chemical, environmental and energy fields. By combining bipolar membranes with electrodialysis technology, acids and bases could be produced with low cost and high efficiency. The interface layer or junction of bipolar membranes (BPMs) is the connection between the anion and cation exchange layers, which the membrane and interface layer modification are vital for improving the performance of BPMs. This paper reviews the effect of modification of a bipolar membrane interface layer on water dissociation efficiency and voltage across the membrane, which divides into three aspects: organic materials, inorganic materials and newly designed materials with multiple components. The structure of the interface layer is also introduced on the performance of bipolar membranes. In addition, the remainder of this review discusses the challenges and opportunities for the development of more efficient, sustainable and practical bipolar membranes.
双极膜是一种新型复合离子交换膜,包含阴离子交换层、阳离子交换层和界面层。界面层或连接层是阴离子交换层和阳离子交换层之间的连接部分。水在连接层处解离成质子和氢氧根离子,这为化学、环境和能源领域的许多挑战提供了解决方案。通过将双极膜与电渗析技术相结合,可以低成本、高效率地生产酸和碱。双极膜(BPMs)的界面层或连接层是阴离子交换层和阳离子交换层之间的连接部分,其中膜和界面层的改性对于提高双极膜的性能至关重要。本文综述了双极膜界面层改性对水解离效率和膜电压的影响,分为有机材料、无机材料和新设计的多组分材料三个方面。还介绍了界面层结构对双极膜性能的影响。此外,本综述的其余部分讨论了开发更高效、可持续和实用的双极膜所面临的挑战和机遇。