In this work, we report the efficient synthesis of zeolitic imidazolate framework-8 (ZIF-8) under ambient conditions in only 1 h, using a slightly polar solvent, dimethyl carbonate (DMC), one of the recommended green solvents according to the CHEM21 solvent selection guide. The optimized reaction conditions allow ZIF-8 preparation with stoichiometric amounts of reagents (2-methylimidazole and Zn2+), minimizing the need for a large excess of organic linker, as is typically required in solvothermal methods with DMF, methanol, or water. These results demonstrate that ZIF-8 can be successfully prepared even in slightly polar media, in contrast to the previous literature. Yields ranging from 80 to 98% were obtained, and the influence of the solvent on the reaction was systematically discussed. The resulting ZIF-8 was fully characterized, revealing a microporous material with excellent textural properties and among the highest reported specific surface areas (up to 1708 m2 g−1) and pore volumes (up to 0.83 cc g−1), compared to state-of-the-art materials. In addition, DMC was efficiently recycled over three consecutive cycles, maintaining high yields and preserving the crystallinity of ZIF-8. The sustainability of the proposed method was thoroughly evaluated using both green metrics (E-factor and PMI) and Life Cycle Assessment (LCA), confirming a significant reduction in environmental impacts compared to the most commonly used organic solvent, for this purpose, dimethylformamide (DMF).

Sessa, A., Vllahu, S., Prete, P., Ritacco, I., Falivene, L., Carbone, A., et al. (2026). Highly efficient synthesis of microporous zeolitic imidazolate framework-8 in dimethyl carbonate under ambient conditions. GREEN CHEMISTRY, 28(20), 8479-8491 [10.1039/d5gc05937b].

Highly efficient synthesis of microporous zeolitic imidazolate framework-8 in dimethyl carbonate under ambient conditions

Rossi, Federico;
2026-01-01

Abstract

In this work, we report the efficient synthesis of zeolitic imidazolate framework-8 (ZIF-8) under ambient conditions in only 1 h, using a slightly polar solvent, dimethyl carbonate (DMC), one of the recommended green solvents according to the CHEM21 solvent selection guide. The optimized reaction conditions allow ZIF-8 preparation with stoichiometric amounts of reagents (2-methylimidazole and Zn2+), minimizing the need for a large excess of organic linker, as is typically required in solvothermal methods with DMF, methanol, or water. These results demonstrate that ZIF-8 can be successfully prepared even in slightly polar media, in contrast to the previous literature. Yields ranging from 80 to 98% were obtained, and the influence of the solvent on the reaction was systematically discussed. The resulting ZIF-8 was fully characterized, revealing a microporous material with excellent textural properties and among the highest reported specific surface areas (up to 1708 m2 g−1) and pore volumes (up to 0.83 cc g−1), compared to state-of-the-art materials. In addition, DMC was efficiently recycled over three consecutive cycles, maintaining high yields and preserving the crystallinity of ZIF-8. The sustainability of the proposed method was thoroughly evaluated using both green metrics (E-factor and PMI) and Life Cycle Assessment (LCA), confirming a significant reduction in environmental impacts compared to the most commonly used organic solvent, for this purpose, dimethylformamide (DMF).
2026
Sessa, A., Vllahu, S., Prete, P., Ritacco, I., Falivene, L., Carbone, A., et al. (2026). Highly efficient synthesis of microporous zeolitic imidazolate framework-8 in dimethyl carbonate under ambient conditions. GREEN CHEMISTRY, 28(20), 8479-8491 [10.1039/d5gc05937b].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11365/1318314