Majid Mohd Faridzuan, Mohd Zaid Hayyiratul Fatimah, Abd Shukur Muhammad Fadhlullah, Ahmad Azizan, Jumbri Khairulazhar
Department of Fundamental and Applied Sciences, Universiti Teknologi PETRONAS, 32610, Seri Iskandar, Perak Darul Ridzuan, Malaysia.
Centre of Innovative Nanostructures & Nanodevices (COINN), Universiti Teknologi PETRONAS, 32610, Seri Iskandar, Perak Darul Ridzuan, Malaysia.
Heliyon. 2023 Oct 6;9(10):e20743. doi: 10.1016/j.heliyon.2023.e20743. eCollection 2023 Oct.
In this study, the physicochemical properties and molecular interactions between zirconium-based metal-organic framework (UiO-66) and three different ionic liquids based on bis(trifluoromethanesulfonyl)imide anion (EMIM, BMIM and OMIM) was performed via a combined experimental and computational approach. The ionic liquid loaded UiO-66 or IL@UiO-66 was synthesized and characterized to understand the host-guest interaction. Density functional theory calculation was performed to analyse the electronic structure of IL@UiO-66 to provide molecular insight on the dominant interactions occurred in the hybrid material. Results showed that all ILs were successfully incorporated into the micropores of UiO-66. The 3D framework was retained even after loaded with ILs as analyzed from XRD pattern. FTIR spectrum reveals that interactions of ILs with UiO-66 influenced by the alkyl chain length of the cation. The anion has a profound affinity with the UiO-66 due to the presence of electronegative atoms. Phase transition study from DSC suggested that the incorporation of ILs has stabilized the framework of UiO-66 by shifting the endothermic peak to a higher state. These findings were further elaborated with DFT calculation. Geometrical optimizations confirmed the structural parameter changes of UiO-66 when loaded with ILs. These was mainly contributed by the non-covalent interactions which was confirmed by the reduced density gradient scattered plot. Another important findings are the strength of hydrogen bonding at the host-guest interface was influenced by the alkyl chain length. The molecular orbital analysis also shows that the size of alkyl chain influence the reactivity of the hybrid material. The present study provides fundamental insights on the molecular interaction of UiO-66 and ILs as a hybrid material, which can open new possibilities for advanced material for metal-organic framework applications in energy storage system, catalysis, gas storage and medicinal chemistry.
在本研究中,通过实验与计算相结合的方法,对锆基金属有机框架材料(UiO - 66)与三种基于双(三氟甲磺酰)亚胺阴离子的不同离子液体(EMIM、BMIM和OMIM)之间的物理化学性质及分子相互作用进行了研究。合成并表征了负载离子液体的UiO - 66(即IL@UiO - 66),以了解主客体相互作用。进行密度泛函理论计算以分析IL@UiO - 66的电子结构,从而深入了解杂化材料中主要发生的相互作用。结果表明,所有离子液体均成功掺入UiO - 66的微孔中。从XRD图谱分析可知,即使负载了离子液体,三维框架仍得以保留。FTIR光谱表明,离子液体与UiO - 66的相互作用受阳离子烷基链长度的影响。由于存在电负性原子,阴离子与UiO - 66具有很强的亲和力。DSC的相变研究表明,离子液体的掺入通过将吸热峰移至更高温度状态而使UiO - 66的框架更加稳定。这些发现通过DFT计算得到了进一步阐述。几何优化证实了负载离子液体时UiO - 66的结构参数变化。这主要是由非共价相互作用引起的,这一点通过降低密度梯度散射图得到了证实。另一个重要发现是主客体界面处氢键的强度受烷基链长度的影响。分子轨道分析还表明,烷基链的大小会影响杂化材料的反应活性。本研究为UiO - 66与离子液体作为杂化材料的分子相互作用提供了基础见解,这可为金属有机框架材料在储能系统、催化、气体储存和药物化学等领域的先进应用开辟新的可能性。