Gu Senlin, Zhang Liangliang, de Campo Liliana, O'Dell Luke A, Wang Dong, Wang Guang, Kong Lingxue
Institute for Frontier Materials, Deakin University, Geelong, VIC 3216, Australia.
Australian Centre for Neutron Scattering, Australia Nuclear Science and Technology Organization (ANSTO), Sydney, NSW 2234, Australia.
Membranes (Basel). 2023 May 24;13(6):549. doi: 10.3390/membranes13060549.
Mesoporous materials based on lyotropic liquid crystal templates with precisely defined and flexible nanostructures offer an alluring solution to the age-old challenge of water scarcity. In contrast, polyamide (PA)-based thin-film composite (TFC) membranes have long been hailed as the state of the art in desalination. They grapple with a common trade-off between permeability and selectivity. However, the tides are turning as these novel materials, with pore sizes ranging from 0.2 to 5 nm, take center stage as highly coveted active layers in TFC membranes. With the ability to regulate water transport and influence the formation of the active layer, the middle porous substrate of TFC membranes becomes an essential player in unlocking their true potential. This review delves deep into the recent advancements in fabricating active layers using lyotropic liquid crystal templates on porous substrates. It meticulously analyzes the retention of the liquid crystal phase structure, explores the membrane fabrication processes, and evaluates the water filtration performance. Additionally, it presents an exhaustive comparison between the effects of substrates on both polyamide and lyotropic liquid crystal template top layer-based TFC membranes, covering crucial aspects such as surface pore structures, hydrophilicity, and heterogeneity. To push the boundaries even further, the review explores a diverse array of promising strategies for surface modification and interlayer introduction, all aimed at achieving an ideal substrate surface design. Moreover, it delves into the realm of cutting-edge techniques for detecting and unraveling the intricate interfacial structures between the lyotropic liquid crystal and the substrate. This review is a passport to unravel the enigmatic world of lyotropic liquid crystal-templated TFC membranes and their transformative role in global water challenges.
基于具有精确界定且灵活的纳米结构的溶致液晶模板的介孔材料,为由来已久的水资源短缺挑战提供了一个诱人的解决方案。相比之下,聚酰胺(PA)基的薄膜复合(TFC)膜长期以来一直被誉为海水淡化领域的先进技术。它们在渗透性和选择性之间面临着常见的权衡。然而,随着这些孔径范围从0.2到5纳米的新型材料成为TFC膜中备受觊觎的活性层,情况正在发生变化。由于能够调节水的传输并影响活性层的形成,TFC膜的中间多孔基材成为释放其真正潜力的关键因素。本综述深入探讨了在多孔基材上使用溶致液晶模板制备活性层的最新进展。它细致地分析了液晶相结构的保留情况,探究了膜的制备过程,并评估了水过滤性能。此外,它还对基材对聚酰胺和基于溶致液晶模板顶层的TFC膜的影响进行了详尽比较,涵盖了表面孔结构、亲水性和非均质性等关键方面。为了进一步拓展边界,该综述探索了一系列多样的有前景的表面改性和中间层引入策略,所有这些策略都旨在实现理想的基材表面设计。此外,它还深入研究了用于检测和揭示溶致液晶与基材之间复杂界面结构的前沿技术领域。这篇综述是一本打开溶致液晶模板化TFC膜神秘世界及其在全球水挑战中变革性作用的通行证。