An Hf(IV)-Based Metal-Organic Framework with Abundant Aromatic Rings and Uncoordinated Carboxylic Groups for
Mengyue Gong1, Xiaoqing Wang1,2, Ye Li1
1State Key Laboratory of Clean and Efficient Coal Utilization, College of Chemical Engineering and Technology, Taiyuan University of Technology, Taiyuan, Shanxi 030024, P. R. China.
Abstract:
The separation of ethane (C2H6) from methane (CH4) is a pivotal process for increasing the calorific value of natural gas, but technically challenging due to their similar physical properties. Adsorbent-based gas separation methods utilizing metal-organic frameworks (MOFs) offer distinct advantages, yet their insufficient efficiency and stability limit their practical applications. Herein, we present a novel stable hafnium-based MOF (Hf-MOF), Hf-H3CTTA-3COOH, constructed from a tritopic carboxylic acid ligand that incorporates high-density uncoordinated carboxylic groups attached to the central benzene ring, and further investigate its adsorption separation properties and mechanisms for C2H6/CH4 mixtures. Featuring abundant aromatic rings and uncoordinated carboxyl oxygen atoms in its octahedral cages, Hf-H3CTTA-3COOH exhibits denser and stronger C-H···π and C-H···O interactions with C2H6 than with CH4. This results in an outstanding selectivity of Hf-H3CTTA-3COOH for C2H6/CH4, reaching 11.8, which is superior to many reported materials. Breakthrough experiments verified the excellent reusability and practical C2H6/CH4 separation feasibility of Hf-H3CTTA-3COOH. The mechanisms are investigated through the GCMC analysis. The results of this study underscore the promising utility of Hf-H3CTTA-3COOH as an effective adsorbent for producing high-purity CH4.
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