Guo Hukang, Fang Chuanjie, Li Fupeng, Cui Wenshou, Xiong Ruiyan, Yang Xing, Zhu Liping
MOE Key Laboratory of Macromolecular Synthesis and Functionalization, Department of Polymer Science and Engineering, Zhejiang University, Hangzhou 310058, P. R. China.
MOE Engineering Research Center of Membrane and Water Treatment Technology, Zhejiang University, Hangzhou 310058, P. R. China.
Mater Horiz. 2023 Oct 30;10(11):5133-5142. doi: 10.1039/d3mh00957b.
The membranes that accurately separate solutes with close molecular weights in harsh solvents are of crucial importance for the development of highly-precise organic solvent nanofiltration (OSN). The physicochemical structures of the membrane need to be rationally designed to achieve this goal, such as customized crosslinked networks, thickness, and pore size. Herein, we synthesize a type of covalent organic polymer (COP) nanofilms with tailor-made thickness and pore structure using a cyclic deposition strategy for precise molecular sieving. By elaborately designing monomer structures and controlling deposition cycle numbers, the COP nanofilms linked by robust β-ketoenamine blocks were endowed with sub-nanometer micropores and a linearly tunable thickness of 10-40 nm. The composite membranes integrating COP nanofilms exhibited adjustable solvent permeance. The membranes further demonstrated steep and finely-regulated rejection curves within the molecular weight range of 200 to 400 Da, where the difference value was as low as 40 Da. The efficient purification and concentration of the antibacterial drug and its intermediate was well achieved. Therefore, the exploited COP nanofilms markedly facilitate the application of microporous organic polymers for precise molecular separation in OSN.
在苛刻溶剂中能够精确分离分子量相近溶质的膜,对于高精度有机溶剂纳滤(OSN)的发展至关重要。为实现这一目标,需要合理设计膜的物理化学结构,如定制交联网络、厚度和孔径。在此,我们采用循环沉积策略合成了一种具有定制厚度和孔结构的共价有机聚合物(COP)纳米薄膜,用于精确的分子筛分。通过精心设计单体结构并控制沉积循环次数,由坚固的β-酮胺嵌段连接的COP纳米薄膜具有亚纳米级微孔和10-40nm的线性可调厚度。集成COP纳米薄膜的复合膜表现出可调的溶剂渗透率。这些膜在200至400Da的分子量范围内进一步展示出陡峭且精细调节的截留曲线,其中差值低至40Da。抗菌药物及其中间体的高效纯化和浓缩得以很好地实现。因此,所开发的COP纳米薄膜显著促进了微孔有机聚合物在OSN中精确分子分离的应用。