Huang Shiqi, Villalobos Luis Francisco, Babu Deepu J, He Guangwei, Li Mo, Züttel Andreas, Agrawal Kumar Varoon
ACS Appl Mater Interfaces. 2019 May 8;11(18):16729-16736. doi: 10.1021/acsami.9b03825. Epub 2019 Apr 29.
Inorganic membranes based on carbon molecular sieve (CMS) films hosting slit-like pores can yield high molecular selectivity with a sub-angstrom resolution in molecular differentiation and therefore are highly attractive for energy-efficient separations. However, the selective layer thickness of the state-of-the-art CMS membranes for gas separation is more than 1 μm, yielding low gas permeance. Also, there is no room-temperature functionalization route for the modification of the pore-size-distribution of CMS to increase the molecular selectivity. In this context, we report two novel fabrication routes, namely, transfer and masking techniques, leading to CMS films with thicknesses as small as 100 nm, yielding attractive gas-sieving performances with H permeance reaching up to 3060 gas permeation unit (GPU). Further, a rapid and highly tunable room-temperature ozone treatment-based postsynthetic modification is reported, shrinking the electron density gap in the nanopores by a fraction of an angstrom and improving gas selectivities by several folds. The optimized membranes yielded H permeance of 507 GPU and H/CH selectivity of 50.7.
基于具有狭缝状孔隙的碳分子筛(CMS)膜的无机膜在分子区分方面可实现具有亚埃分辨率的高分子选择性,因此对于节能分离极具吸引力。然而,用于气体分离的现有先进CMS膜的选择性层厚度超过1μm,导致气体渗透率较低。此外,目前尚无用于修饰CMS孔径分布以提高分子选择性的室温功能化途径。在此背景下,我们报道了两种新颖的制备路线,即转移和掩膜技术,可制备出厚度小至100nm的CMS膜,具有吸引人的气体筛分性能,H渗透率高达3060气体渗透单位(GPU)。此外,还报道了一种基于快速且高度可调的室温臭氧处理的合成后修饰方法,可将纳米孔中的电子密度差距缩小至埃级的一小部分,并将气体选择性提高数倍。优化后的膜H渗透率为507 GPU,H/CH选择性为50.7。