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Functionalized UiO-66(Ce) for photocatalytic organic transformation: the role of active sites modulated by ligand functionalization

机译:用于光催化有机转化的功能化UIO-66(CE):由配体功能调节的活性位点的作用

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摘要

Ligand functionalization has been considered as an efficient strategy to modulate the properties of metal–organic frameworks (MOFs). In this work, a series of functionalized UiO-66(Ce)-X (X = H, CH3, Br, NO2) have been successfully synthesized for the photocatalytic oxidation of benzylamine under visible light. The UiO-66(Ce)-CH3 exhibited the highest conversion among the samples. The quantity and the acid strength of coordinatively unsaturated Ce sites as Lewis acid sites are modulated by ligand functionalization, both following the order of UiO-66(Ce)-CH3 > UiO-66(Ce)-H > UiO-66(Ce)-Br > UiO-66(Ce)-NO2, which is closely related to photocatalytic performance. Based on in situ FTIR results, coordinatively unsaturated Ce sites can facilitate the activation of benzylamine molecules via the surface –Ce⋯N– coordination species, and the activated degree of the N–H bonds is evaluated and compared via the force constant. In the photocatalytic process, photogenerated holes achieve the deprotonation of activated benzylamine molecules to form benzylamine cations, and photogenerated electrons captured by oxygen vacancies simultaneously reduce activated O2 to form ˙O2−, effectively achieving this selective photooxidation. Finally, a synergetic photocatalytic mechanism associated with the coordination activation was proposed to explain this reaction process.
机译:配体功能化已被认为是调节金属有机框架(MOF)特性的有效策略。在这项工作中,一系列功能化的UIO-66(CE)-X(X = H,CH3,BR,NO2)已成功合成用于可见光下苄胺的光催化氧化。 UIO-66(CE)-CH3在样品中的转化率最高。随着Lewis酸位点的调节,均遵循UIO-66(CE)-CH3> UIO-66(CE)-H> UIO-66(CE)调节配体官能化的数量和酸强度。 -br> UIO-66(CE)-NO2,与光催化性能密切相关。基于原位FTIR结果,协调不饱和的CE位点可以通过表面–CE⋯N-配位物种促进苄胺分子的激活,并通过力常数评估并比较N – H键的活化程度。在光催化过程中,光生孔的孔实现了活化的苄胺分子的去质子化,形成苄胺阳离子,并通过氧气空位捕获的光生成电子同时将活化的O2降低至形成–πo2-,从而有效地实现了这种选择的精选光氧化。最后,提出了与协调激活相关的协同光催化机制来解释这一反应过程。

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