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Controlling the dispersion of supported polyoxometalate heterogeneous catalysts: impact of hybridization and the role of hydrophilicity-hydrophobicity balance and supramolecularity

机译:控制负载型多金属氧酸盐非均相催化剂的分散性:杂交的影响以及亲水性-疏水性平衡和超分子的作用

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摘要

The hybridization of polyoxometalates (POMs) through an organic–inorganic association offers several processing advantages in the design of heterogeneous catalysts. A clear understanding of the organization of these hybrid materials on solid surfaces is necessary to optimise their properties. Herein, we report for the first time the organization of Keggin phosphotungstic [PW12O40]3− and Wells–Dawson (WD) phosphomolybdic [P2Mo18O62]6− anions deposited on mica (hydrophilic), and highly oriented pyrolytic graphite (HOPG) (hydrophobic) surfaces. Next, the supramolecular organization of the organic–inorganic hybrid materials formed from the association of POM anions and dimethyldioctadecylammonium bromide (DODA) is investigated as a function of the hydrophilic or hydrophobic nature of the surfaces. The height of the Keggin-POM anions, measured with tapping mode (TM-AFM) is always in good agreement with the molecular dimension of symmetric Keggin-POM anions (ca. 1 nm). However, the asymmetric WD-POM anions form monolayer assemblies on the surfaces with the orientation of their long molecular axis (ca. 1.6 nm) depending on the hydrophilic or hydrophobic properties of the substrate. Namely, the long axis is parallel on mica, and perpendicular on HOPG. When hybridized with DODA, the organization of the hybrid material is dictated by the interaction of the alkyl side chains of DODA with the substrate surface. On HOPG, the DODA–POM hybrid forms small domains of epitaxially arranged straight nanorod structures with their orientation parallel to each other. Conversely, randomly distributed nanospheres are formed when the hybrid material is deposited on freshly cleaved mica. Finally, a UV–ozone treatment of the hybrid material allows one to obtain highly dispersed isolated POM entities on both hydrophilic and hydrophobic surfaces. The hybridization strategy to prevent the clustering of POMs on various supports would enable to develop highly dispersed POM-based heterogeneous catalysts with enhanced functionalities.
机译:通过有机-无机缔合的多金属氧酸盐(POM)的杂化在多相催化剂的设计中提供了一些加工优势。必须明确了解这些杂化材料在固体表面上的组织,以优化其性能。在此,我们首次报道了沉积在云母上的Keggin磷钨[PW12O40] 3−和Wells–Dawson(WD)磷钼[P2Mo18O62] 6−阴离子(亲水性)和高度取向的热解石墨(HOPG)(疏水性)的组织表面。接下来,研究了有机-无机杂化材料的超分子组织,该材料是由POM阴离子和二甲基二十八烷基溴化铵(DODA)缔合而成的,取决于表面的亲水性或疏水性。用敲击模式(TM-AFM)测量的Keggin-POM阴离子的高度始终与对称Keggin-POM阴离子的分子尺寸(约1 nm)高度吻合。但是,不对称的WD-POM阴离子根据其亲水或疏水特性,在其长分子轴(约1.6 nm)的方向上形成单层组件。即,长轴在云母上平行,在HOPG上垂直。当与DODA杂交时,杂化材料的组织取决于DODA烷基侧链与底物表面的相互作用。在HOPG上,DODA-POM杂化物形成外延排列的直纳米棒结构的小区域,它们的方向彼此平行。相反,当杂化材料沉积在新鲜裂解的云母上时,会形成随机分布的纳米球。最后,对杂化材料进行紫外线-臭氧处理后,可以在亲水和疏水表面上获得高度分散的孤立POM实体。防止POM在各种载体上聚集的杂交策略将能够开发具有增强功能的高度分散的基于POM的非均相催化剂。

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