Cheng Xiong, Bae Joonho
Department of Physics, Gachon University, Seongnam-si 13120, Gyeonggi-do, Republic of Korea.
Polymers (Basel). 2024 Nov 24;16(23):3269. doi: 10.3390/polym16233269.
In recent years, hierarchically porous polymer membranes (HPPMs) have emerged as promising materials for a wide range of applications, including filtration, separation, and energy storage. These membranes are distinguished by their multiscale porous structures, comprising macro-, meso-, and micropores. The multiscale structure enables optimizing the fluid dynamics and maximizing the surface areas, thereby improving the membrane performance. Advances in fabrication techniques such as electrospinning, phase separation, and templating have contributed to achieving precise control over pore size and distribution, enabling the creation of membranes with properties tailored to specific uses. In filtration systems, these membranes offer high selectivity and permeability, making them highly effective for the removal of contaminants in environmental and industrial processes. In electrochemical energy storage systems, the porous membrane architecture enhances ion transport and charge storage capabilities, leading to improved performance in batteries and supercapacitors. This review highlights the recent advances in the preparation methods for hierarchically porous structures and their progress in electrochemical energy storage applications. It offers valuable insights and references for future research in this field.
近年来,分级多孔聚合物膜(HPPMs)已成为用于包括过滤、分离和能量存储等广泛应用的有前景的材料。这些膜的特点是具有多尺度多孔结构,包括大孔、中孔和微孔。这种多尺度结构能够优化流体动力学并最大化表面积,从而提高膜的性能。诸如静电纺丝、相分离和模板法等制造技术的进步有助于实现对孔径和分布的精确控制,从而能够制造出具有针对特定用途定制性能的膜。在过滤系统中,这些膜具有高选择性和渗透性,使其在环境和工业过程中去除污染物方面非常有效。在电化学能量存储系统中,多孔膜结构增强了离子传输和电荷存储能力,从而提高了电池和超级电容器的性能。本综述重点介绍了分级多孔结构制备方法的最新进展及其在电化学能量存储应用中的进展。它为该领域的未来研究提供了有价值的见解和参考。