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◆ Journal of CO2 Utilization2026-02-10· Catalysis

Ferrocene-linked triazine-based porous organic polymers as multifunctional platforms for CO2 recognition, separation and utilization

Mohamed Gamal Mohamed, Weichun Huang, Mohsin Ejaz, Yang‐Chin Kao, Yen-Min Lo, Ahmed A. K. Mohammed, Yen-Ling Kuan, Shiao-Wei Kuo

原始摘要(英文原文)· Original abstract
The development of efficient materials that can capture CO 2 and catalyze its conversion into value-added organic compounds is critically important. The concept of CO 2 Capture and Utilization (CCU) is gradually gaining the attention of researchers. In this study, we designed and synthesized ferrocene and triazine-based porous organic polymers (POP), named FC-TPT-POP and FC-TPT-Ph-POP, through a Schiff base reaction for CO 2 capture, and utilized them as catalysts to transform CO 2 and various epoxides into cyclic carbonates via a cycloaddition process. The FC-TPT-POP showed high surface area (797 m 2 g −1 ) and microporosity. The presence of high surface area, porosity, and triazine units having nitrogen basic sites showed excellent selective CO 2 capture (3.34 mmol g −1 at 1 bar pressure/273 K, Q st of 34 kJ mol −1 ). Both POPs show strong CO 2 selectivity at low pressures due to interactions between nitrogen sites and the highly polar, high-quadrupole CO 2 molecules. FC-TPT-POP outperforms FC-TPT-Ph-POP, achieving a CO 2 /N 2 selectivity of about 40 at 273 K. Moreover, it demonstrates outstanding catalytic performance in transforming simple terminal epoxides into cyclic carbonates using CO 2 as a reactant. For example, under mild conditions (120 °C, 400 psi, 8 h), FC-TPT-POP achieved a high conversion of 99.5 % toward propylene oxide (PO). The catalytic effect arises from the synergistic interaction of Lewis basic nitrogen atoms in the triazine units and the metal active sites of ferrocene. Therefore, the development of ferrocene-triazine-based POP catalysts in this study offers a promising strategy for lowering atmospheric CO 2 levels through efficient capture and catalytic conversion.
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Ferrocene-linked triazine-based porous organic polymers as multifunctional platforms for CO2 recognition, separation and utilization — 科研速览 Science Skim