Removing trace ethane (C2H6) from ethylene (C2H4)-rich streams is essential for high-purity C2H4 production but remains energy-intensive due to their similar physicochemical properties. Adsorptive separation using metal-organic frameworks (MOFs) offers a promising alternative to cryogenic distillation but is limited by insufficient C2H6 uptake under industrially relevant low-pressure conditions. Here, we report a microporous copper-based framework, NUC-201Cu, synthesized via an in situ ligand transformation in which cyano groups convert to tetrazole units during assembly. This strategy generates abundant N-rich binding sites within confined pores, thereby strengthening interactions with C2H6. Single-component adsorption measurements show that NUC-201Cu achieves a benchmark C2H6 uptake of 51.9 cm3 g-1 at 0.06 bar and 298 K and exhibits a distinct adsorption preference over C2H4. Ideal adsorbed solution theory (IAST) calculations predict a selectivity of 2.6 for an equimolar C2H6/C2H4 mixture at 298 K and 1 bar. Theoretical simulations identify tetrazole groups as the dominant C2H6 adsorption sites, while dynamic breakthrough experiments confirm efficient separation, enabling the direct production of high-purity C2H4. These findings demonstrate that in situ ligand transformation provides an effective approach for constructing highly selective adsorption environments in microporous MOFs, offering promising potential for energy-efficient hydrocarbon separations.
Guo et al. (Mon,) studied this question.