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Updated: Aug 12, 2026

Discovery and Synthesis Optimization of Isoreticular Al(III) Phosphonate-Based Metal-Organic Framework Compounds Using High-Throughput Methods
Published on: October 6, 2023
Computational Guided Structural Design for Optimized Pore Size and Shape Metal-Organic Framework Enabling One-Step
Tao Zhang1, Yu Dang1, Jian-Wei Cao1
1Key Laboratory of Special Functional and Smart Polymer Materials of Ministry of Industry and Information Technology, Xi'an Key Laboratory of Functional Organic Porous Materials, School of Chemistry and Chemical Engineering, Northwestern Polytechnical University, Xi'an, Shaanxi, China.
Abstract:
Current natural gas upgrading strategies primarily focus on CH4 recovery, treating C2H6 and C3H8 merely as impurities, which results in resource wastage. In this work, an advanced industrial operation, simultaneous separation of both pure CH4 and C3H8 from CH4/C2H6/C3H8 ternary gas mixture was realized. Herein, based on semi-empirical computational screening, the desired pore features were identified as an ideal nonpolar aromatic surface, a cage-like geometry, and a suitable pore size. A new material Ni-pza-ina was directionally designed and synthesized. Sorption and separation experiments demonstrated that Ni-pza-ina served the industrial operation well with superior separation performance compared to its parent analogue Ni-bdc-ina and many other materials. Molecular simulations elucidated that the shape/size matching and distinct affinity differences between C2H6 and C3H8 are the governing factors, which are responsible for the successful separation of CH4 (6.05 mmol g-1, purity > 99.5%) and C3H8 (0.90 mmol g-1, purity > 99.5%) from CH4/C2H6/C3H8 85:10:5 (v/v/v) ternary in the breakthrough experiment. Finally, the industrial viability of Ni-pza-ina was demonstrated through an industrial two-bed PSA process simulation, which achieved high recoveries of CH4 (69.17%) and C3H8 (92.69%) in a single cycle, underscoring its promise for realistic industrial application.

