Pebax-based membrane filled with photo-responsive Azo@NH2-MIL-53 nanoparticles for efficient SO2/N2 separation

选择性 纳米颗粒 化学工程 材料科学 吸附 巴勒 气体分离 溶解度 纳米技术 化学 有机化学 催化作用 生物化学 工程类
作者
Qingping Xin,Shuo Li,Faxin Ma,Jianping Guo,Shaofei Wang,Guangyu Xuan,Xiaoli Ding,Lei Zhang,Yuzhong Zhang
出处
期刊:Separation and Purification Technology [Elsevier]
卷期号:296: 121363-121363 被引量:15
标识
DOI:10.1016/j.seppur.2022.121363
摘要

The preparation of mixed matrix membranes (MMMs) using metal–organic framework (MOF) as fillers is one of the simple and effective methods to improve the gas permeability and selectivity of membranes, and it has an attractive prospect to achieve controllable gas separation process. Herein, NH2-MIL-53 nanoparticles are synthesized by hydrothermal method and modified by aminoazobenzene (Azo) by decompression loading technology. The multifunctional [email protected]2-MIL-53 nanoparticles are incorporated into the Pebax matrix to fabricate MMMs for efficient and controllable SO2 separation. Pebax/[email protected]2-MIL-53–20% membrane exhibits the maximum SO2 permeability of 2570 Barrer with a SO2/N2 selectivity of 717 and the separation process of SO2/N2 has dynamic photo-responsive characteristics under different light conditions, which is attributed to the incorporation of the [email protected]2-MIL-53. First, the NH2-MIL-53 nanoparticles with high specific surface area of 637 m2.g−1 and pore size of 1.50 nm are introduced into MMMs to construct rich SO2 transport channels, increasing the diffusivity selectivity. Second, the inherent –NH2 groups and introduced -N = N- groups in [email protected]2-MIL-53 increase the affinity of SO2, enhancing the solubility selectivity. Third, by artificially changing the light conditions to accurately control the conformation of Azo and the pore structure of NH2-MIL-53 is changed, which significantly changes the SO2 adsorption capacity of NH2-MIL-53. Due to light is available in abundance in the form of sunlight, the mixed matrix membrane coupled with photo-responsive MOF can achieve more efficient and energy-saving gas separation process.
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