State Key Laboratory of Materials-Oriented Chemical Engineering, College of Chemical Engineering , Nanjing Tech University , Nanjing 211816 , Jiangsu , P. R. China.
ACS Appl Mater Interfaces. 2019 Nov 27;11(47):44783-44791. doi: 10.1021/acsami.9b18062. Epub 2019 Nov 13.
Covalent organic frameworks (COFs) with ordered arrays of sub-2 nm regular pores are drawing increasing attention in membrane separation, and it remains highly desirable for effective and controllable strategies to fabricate COF-based membranes. Herein, we demonstrate a perforated polymer-assisted transfer strategy enabling COF nanofilms for molecular separation. Solvothermal synthesis is used for the confined growth of TpPa, a stable, imine-linked COF, on the smooth surfaces of silicon substrates. Continuous, crystalline COF nanofilms are obtained, and their thicknesses are tunable in the range from a few tens to several hundred nanometers depending on monomer concentrations and reaction time. A block copolymer layer is coated on the COF nanofilms, which is then perforated to produce interconnected mesopores by the mechanism of selective swelling-induced pore generation. The perforated polymer coating functions as a protective but permeable layer enabling the easy transfer of the COF nanofilm onto porous substrates. Thus, we obtain a new type of composite membranes with the microporous COF nanofilm as the selective layer, sandwiched between the macroporous substrate and the mesoporous protective layer. The composite membranes exhibit good separation performances with water permeance up to ∼51 L m h bar and high rejection rates to various dyes. This work demonstrates a new method to prepare COF-based membranes for molecular separation, and the invented perforated polymer-assisted transfer technology is expected to find applications in transferring other ultrathin materials to demanded substrates.
具有亚 2nm 规则孔有序排列的共价有机框架(COFs)在膜分离中受到越来越多的关注,因此,开发有效且可控的策略来制备基于 COF 的膜仍然是非常有必要的。在此,我们展示了一种具有穿孔聚合物辅助转移策略的 COF 纳米薄膜,可用于分子分离。溶剂热合成用于在硅基底的光滑表面上限制TpPa(一种稳定的亚胺键合 COF)的受限生长。连续、结晶的 COF 纳米薄膜可以获得,并且其厚度可以根据单体浓度和反应时间在几十到几百纳米的范围内进行调节。在 COF 纳米薄膜上涂覆一层嵌段共聚物层,然后通过选择性溶胀诱导孔生成的机制将其穿孔以产生相互连接的中孔。穿孔聚合物涂层起到了保护性但可渗透的层的作用,使 COF 纳米薄膜能够容易地转移到多孔基底上。因此,我们获得了一种新型的复合膜,其中微孔 COF 纳米薄膜作为选择性层,夹在大孔基底和中孔保护层之间。复合膜表现出良好的分离性能,水通量高达约 51 L m h bar,对各种染料具有高截留率。这项工作展示了一种用于分子分离的 COF 基膜的新制备方法,所发明的穿孔聚合物辅助转移技术有望应用于将其他超薄材料转移到所需的基底上。