Leloire Maeva, Walshe Catherine, Devaux Philippe, Giovine Raynald, Duval Sylvain, Bousquet Till, Chibani Siwar, Paul Jean-Francois, Moissette Alain, Vezin Hervé, Nerisson Philippe, Cantrel Laurent, Volkringer Christophe, Loiseau Thierry
Unité de Catalyse et Chimie du Solide, Université de Lille, Centrale Lille Université d'Artois, UMR CNRS 8181-UCCS, 59000, Lille, France.
Laboratoire de Spectroscopie pour les Interactions la Réactivité et l'Environnement, Université de Lille, UMR CNRS 8516-LASIRE, 59000, Lille, France.
Chemistry. 2022 Mar 7;28(14):e202104437. doi: 10.1002/chem.202104437. Epub 2022 Feb 10.
A series of Zr-based UiO-n MOF materials (n=66, 67, 68) have been studied for iodine capture. Gaseous iodine adsorption was collected kinetically from a home-made set-up allowing the continuous measurement of iodine content trapped within UiO-n compounds, with organic functionalities (-H, -CH , -Cl, -Br, -(OH) , -NO , -NH , (-NH ) , -CH NH ) by in-situ UV-Vis spectroscopy. This study emphasizes the role of the amino groups attached to the aromatic rings of the ligands connecting the {Zr O (OH) } brick. In particular, the preferential interaction of iodine with lone-pair groups, such as amino functions, has been experimentally observed and is also based on DFT calculations. Indeed, higher iodine contents were systematically measured for amino-functionalized UiO-66 or UiO-67, compared to the pristine material (up to 1211 mg/g for UiO-67-(NH ) ). However, DFT calculations revealed the highest computed interaction energies for alkylamine groups (-CH NH ) in UiO-67 (-128.5 kJ/mol for the octahedral cavity), and pointed out the influence of this specific functionality compared with that of an aromatic amine. The encapsulation of iodine within the pore system of UiO-n materials and their amino-derivatives has been analyzed by UV-Vis and Raman spectroscopy. We showed that a systematic conversion of molecular iodine (I ) species into anionic I ones, stabilized as I ⋅⋅⋅I or I complexes within the MOF cavities, occurs when I @UiO-n samples are left in ambient light.
一系列基于锆的UiO-n金属有机框架材料(n = 66、67、68)已被用于碘捕获研究。通过自制装置动态收集气态碘吸附情况,该装置能够通过原位紫外可见光谱连续测量捕获在UiO-n化合物中的碘含量,这些化合物具有有机官能团(-H、-CH₃、-Cl、-Br、-(OH)₂、-NO₂、-NH₂、(-NH₂)₂、-CH₂NH₂)。本研究强调了连接{Zr₆O₄(OH)₁₂}砖的配体芳香环上连接的氨基的作用。特别是,通过实验观察到碘与孤对基团(如氨基官能团)的优先相互作用,并且这也基于密度泛函理论计算。实际上,与原始材料相比,氨基功能化的UiO-66或UiO-67系统地测量到更高的碘含量(UiO-67-(NH₂)₂高达1211 mg/g)。然而,密度泛函理论计算揭示了UiO-67中烷基胺基团(-CH₂NH₂)的最高计算相互作用能(八面体空腔为-128.5 kJ/mol),并指出了这种特定官能团与芳香胺官能团相比的影响。通过紫外可见光谱和拉曼光谱分析了碘在UiO-n材料及其氨基衍生物孔系统中的封装情况。我们表明,当I₂@UiO-n样品置于环境光下时,分子碘(I₂)物种会系统地转化为阴离子I⁻物种,并在金属有机框架空腔内稳定为I⁻∙∙∙I⁻或I⁻⁻络合物。