聚砜
膜
材料科学
化学工程
吸附
碳纤维
金属有机骨架
结晶度
聚合物
复合材料
化学
复合数
有机化学
生物化学
工程类
作者
Hamid Raza,Farhat Yasmeen,Muhammad Sarfraz,Muhammad Salman Habib,Mohammed S. Ba‐Shammakh,Khurram Shahzad Munawar,Nazir Ahmad
摘要
Abstract An important contributor to global warming is the incessant escalation in carbon dioxide gas (CO 2 ) levels in the air, mainly attributed to combustion of fossil fuels. A promising strategy to regulate emission of greenhouse gases into open air is the implementation of carbon capture systems at existing and prospective carbon‐releasing infrastructures. Being a distinguished class of mesoporous materials, metal–organic frameworks (MOFs) have great potential to efficiently alleviate CO 2 emissions into the atmosphere. Nanocrystals of a newly developed Cu(II)‐DDA MOF were incorporated into polysulfone (PSF) matrix in varying concentrations to fabricate hybrid membranes to enhance their carbon capture efficiency. The prepared mixed‐matrix membranes (MMMs) demonstrated better filler‐matrix interfacial adhesion, homogenous nanofiller dispersal, semicrystalline domains and thermally resistant structure. Gas adsorption tests conducted on both the Cu(II)‐DDA MOF nanocrystals and hybrid membranes indicated good adsorption capacity for CO 2 as compared to N 2 . Experiments using cast MMMs revealed that doping the polymer matrix with MOF nanofillers increased the CO 2 permeability and the CO 2 /N 2 selectivity of the cast MMMs. In comparison to the pure PSF membrane, the CO 2 permeability and CO 2 /N 2 permselectivity of the composite membrane doped with 5 wt% Cu(II)‐DDA MOF nanocrystals were nearly doubled.
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