Jiawei Zhang, Jingjing Ma, Chen Liu, Qi Wang, Yiling Xu, Long Fang, Kai Xia, Deshuai Sun
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引用次数: 0
Abstract
Environmental friendliness and high adsorption capacity are important properties of CO2 adsorbents. Bio-based metal–organic framework (bioMOFs) materials offer notable benefits for CO2 capture. Amino acids like l-glutamic acid (Glu) and L-aspartate (Asp) are employed as ligands for the synthesis of bioMOFs, Asp-Cu and Glu-Cu. Characterization results confirmed that Asp-Cu and Glu-Cu possessed tertiary amine and secondary amine structures, respectively. The adsorption capacities of Glu-Cu and Asp-Cu were up to 253 mg·g−1 and 277 mg·g−1 at 1 bar CO2 pressure and 190 mg·g−1 and 223 mg·g−1 at 0.15 bar CO2 pressure. The CO2 adsorption properties of bioMOFs were comprehensively evaluated under various conditions, including temperature, water content, SO2 concentration, and other compositions. Adsorption data were fitted well with the pseudo-first-order kinetics and Weber-Morris intraparticle diffusion model. The kinetic studies revealed that a small amount of water significantly accelerated the pseudo-first-order kinetic constants, whereas excess water vapor greatly hindered the intra-diffusion constants of CO2. The presence of SO2 led to a decrease in the adsorption capacity of both MOFs due to rapid reactions occurring with active sites on the MOF surface. Furthermore, these bioMOFs were easily recovered and regenerated for at least 20 cycles. The primary CO2 adsorption mechanism involved catalytic hydration reactions on Asp-Cu, while chemical adsorption occurred on Glu-Cu. Both mechanisms were accompanied by physical adsorption.
期刊介绍:
The Korean Journal of Chemical Engineering provides a global forum for the dissemination of research in chemical engineering. The Journal publishes significant research results obtained in the Asia-Pacific region, and simultaneously introduces recent technical progress made in other areas of the world to this region. Submitted research papers must be of potential industrial significance and specifically concerned with chemical engineering. The editors will give preference to papers having a clearly stated practical scope and applicability in the areas of chemical engineering, and to those where new theoretical concepts are supported by new experimental details. The Journal also regularly publishes featured reviews on emerging and industrially important subjects of chemical engineering as well as selected papers presented at international conferences on the subjects.