Gao Bingjie, Gong Youxin, Zhang Zhe, Liu Qinghua, Yin Congcong, Wei Mingjie, Wang Yong
State Key Laboratory of Materials-Oriented Chemical Engineering, and College of Chemical Engineering, Nanjing Tech University, Nanjing, Jiangsu, 211816, P.R. China.
School of Environmental Science and Engineering, Nanjing Tech University, Nanjing, Jiangsu, 211816, P.R. China.
Angew Chem Int Ed Engl. 2025 Jul 7;64(28):e202503090. doi: 10.1002/anie.202503090. Epub 2025 May 15.
Turing structures have emerged as promising features for separation membranes, enabling significantly enhanced water permeation due to their ultra-permeable internal cavities. So far, Turing structures are constrained by the highly cross-linked and heterogeneous porosities, impeding them from the application of molecular separations requiring loose but regular pore structures. This work reports a covalent organic frameworks (COFs) membrane with nanoscale striped Turing structures for fast and precise molecular separations. Porous and hydrophilic modulation layers based on metal-polyphenol chemistry are constructed on polymeric substrates, which are capable of enhancing the uptake and controlled release of the activator of amines during synthesis. The appropriately reduced diffusion rate triggers the phenomenon of "local activation and lateral inhibition" arising from thermodynamic instability, creating Turing structures with externally striped and internally cavitated architectures. The Turing-type COF membranes exhibit a water permeance of 45.0 L m h bar, which is approximately 13 times greater than the non-Turing membranes, and an ultrahigh selectivity of up to 638 for two model peptides. This work demonstrates the feasibility that Turing structures with ultra-permeable internal cavities can be created in COF membranes and underscores their superiority in molecular separations, including but not limited to high-value pharmaceuticals.
图灵结构已成为分离膜的一个有前景的特征,由于其具有超渗透内腔,能显著提高水的渗透性能。到目前为止,图灵结构受到高度交联和异质孔隙率的限制,这阻碍了它们在需要松散但规则孔结构的分子分离中的应用。这项工作报道了一种具有纳米级条纹图灵结构的共价有机框架(COF)膜,用于快速精确的分子分离。基于金属-多酚化学构建了多孔且亲水的调节层,该调节层在聚合物基底上,能够在合成过程中增强胺类活化剂的吸收和控制释放。适当降低的扩散速率引发了由热力学不稳定性导致的“局部活化和横向抑制”现象,从而产生具有外部条纹和内部空化结构的图灵结构。图灵型COF膜表现出45.0 L m⁻² h⁻¹ bar⁻¹的水渗透通量,约为非图灵膜的13倍,对两种模型肽的超高选择性高达638。这项工作证明了在COF膜中创建具有超渗透内腔的图灵结构的可行性,并强调了它们在分子分离中的优势,包括但不限于高价值药物。