Khan Niaz Ali, Yuan Jinqiu, Wu Hong, Cao Li, Zhang Runnan, Liu Yanan, Li Lianshan, Rahman Ata Ur, Kasher Roni, Jiang Zhongyi
Collaborative Innovation Center of Chemical Science and Engineering (Tianjin) , Tianjin 300072 , China.
Institute of Chemical Sciences , University of Peshawar , Peshawar 25120 , Pakistan.
ACS Appl Mater Interfaces. 2019 Aug 14;11(32):28978-28986. doi: 10.1021/acsami.9b09945. Epub 2019 Aug 2.
2D graphene oxide (GO) membranes attract great attention because of their ultrathin thickness and superior molecular sieving ability, but their low flux and instability in aqueous environments are still the major challenges for practical applications. In this study, we designed hybrid nanosheets from chemically grafted GO and covalent organic frameworks (COFs) as building blocks to fabricate mixed nanosheet membranes. The covalent triazine framework (CTF), a triazine-based COF, is exfoliated into nanosheets and then reacted with GO to form the GO-CTF hybrid nanosheets, which are then assembled into GO-CTF mixed nanosheet membranes. The GO-CTF membranes show a layered configuration of ca. 32 nm thickness. The incorporation of CTF nanosheets inappreciably changes the interlayer distance of GO-CTF membranes, ensuring high rejections to organic dyes (>90%); meanwhile, the CTF nanosheets afford extra through-plane channels that significantly shorten the water transport pathway. The GO-CTF membranes exhibit a water flux of 226.3 L m h bar, more than 12-fold higher than pure GO membranes. Besides, the strong chemical bonds between GO and COF render the GO-CTF membranes notably enhanced stability. Grafting of porous nanosheets onto nonporous nanosheets to acquire hybrid nanosheets as building blocks opens a new avenue to the fabrication of 2D membranes with promising application potential.
二维氧化石墨烯(GO)膜因其超薄的厚度和优异的分子筛分能力而备受关注,但其在水性环境中的低通量和不稳定性仍然是实际应用中的主要挑战。在本研究中,我们设计了由化学接枝的GO和共价有机框架(COF)组成的混合纳米片作为构建块来制备混合纳米片膜。共价三嗪框架(CTF),一种基于三嗪的COF,被剥离成纳米片,然后与GO反应形成GO-CTF混合纳米片,接着将其组装成GO-CTF混合纳米片膜。GO-CTF膜呈现出约32nm厚度的层状结构。CTF纳米片的掺入对GO-CTF膜的层间距影响不大,确保了对有机染料的高截留率(>90%);同时,CTF纳米片提供了额外的面内通道,显著缩短了水的传输路径。GO-CTF膜的水通量为226.3L m h bar,比纯GO膜高出12倍以上。此外,GO和COF之间的强化学键使GO-CTF膜的稳定性显著提高。将多孔纳米片接枝到无孔纳米片上以获得混合纳米片作为构建块,为制备具有广阔应用潜力的二维膜开辟了一条新途径。