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Harnessing Multiple Adsorption Sites in a Phosphonate Metal–Organic Framework for Efficient C2H2/CO2 Separation

ChemPlusChem, September 2025, DOI. Login für Volltextzugriff.

Von Wiley-VCH zur Verfügung gestellt

A typical phosphonic acid metal–organic framework, Ni-STA-12, is synthesized and its unique C2H2/CO2 separation mechanism is explored. The widely distributed adsorption sites in the activated framework effectively adsorbed C2H2 with good selectivity.


Due to their comparable molecular dimensions and volatility, distinguishing C2H2 from CO2 during purification remains a significant challenge in industrial applications. Achieving effective isolation of C2H2 from binary mixtures of C2H2/CO2 is therefore a critical objective in petrochemical processes. Herein, an adsorption mechanism enabling selective C2H2/CO2 separation has been elucidated in the phosphonate metal–organic framework (MOF) Ni-STA-12. The high C2H2 uptake and remarkable CO2 selectivity of Ni-STA-12 arise from the synergistic effect of diverse adsorption sites distributed throughout its structure, including various oxygen atoms and open metal sites. The adsorbed C2H2 interacts strongly with the exposed adsorption sites in the framework and its binding capacity is much larger than that of CO2. Dynamic breakthrough experiments demonstrated the practical potential for the separation of C2H2 in mixtures, and excellent separation potential (Δq) demonstrating high C2H2 recovery from C2H2/CO2 mixtures. Theoretical calculations show the synergistic interaction of various oxygen atoms of the MOF with the open metal site Ni and the dominant role of uncoordinated oxygen atoms in the adsorption of C2H2.

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