离子液体
范德瓦尔斯力
吸附
材料科学
密度泛函理论
溶剂
化学物理
对偶(语法数字)
离子键合
碳纤维
纳米技术
转化(遗传学)
计算化学
分子
分子动力学
化学
化学工程
物理吸附
作者
Jarede Da Silva Martins,Carolina B. P. Ligieiro,Rodrigo S. Bitzer,Yann Maia,Odivaldo C. Alves,Sara S. Vieira,Paulo Henrique de Melo Toledo,Gustavo F. S. Andrade,Thiago M. Rossi,Mariana M.V.M. Souza,Célia M. Ronconi,Luciano T. Costa
摘要
The development of advanced materials for carbon management has driven significant interest in hybrid systems based on metal-organic frameworks (MOFs) and ionic liquids (ILs), owing to their tunable structures and enhanced affinity for CO2. In this study, we demonstrate that the IL [BMIm][BF4], employed as an ionothermal medium, plays a dual role as both solvent and structure-directing agent, enabling the formation of a two-dimensional copper-terephthalate network (Cu-BDC-2), which differs from the material obtained via conventional solvothermal synthesis (Cu-BDC-1). Structural and spectroscopic analyses reveal that IL-derived species remain associated with the framework surface, directly influencing its physicochemical properties. CO2 adsorption measurements at 85 °C show that Cu-BDC-2 exhibits enhanced interactions with CO2, attributed to the effect of IL-derived species. In contrast, theoretical calculations indicate that, in Cu-BDC-1, van der Waals interactions between CO2 and the aromatic linkers dominate the adsorption process. Furthermore, the GFN1 - xTB method shows good agreement with DFT + U results, highlighting its potential as a computationally efficient approach for screening such systems. These findings demonstrate that ionothermal synthesis is an effective strategy for modulating both the structure and surface functionality of MOF-based materials, opening new perspectives for their applications.
科研通智能强力驱动
Strongly Powered by AbleSci AI