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首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >HO2 nanocrystals grafted on macroporous silica: A novel hybrid organic-inorganic sol-gel approach for the synthesis of highly photoactive composite material
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HO2 nanocrystals grafted on macroporous silica: A novel hybrid organic-inorganic sol-gel approach for the synthesis of highly photoactive composite material

机译:大孔二氧化硅上接枝的HO2纳米晶体:一种新型的有机-无机杂化溶胶-凝胶方法,用于合成高光敏性复合材料

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摘要

TiO2-SiO2 composite materials with photocatalytic properties similar to those of slurry powdered TiO2 is obtained by a novel sol-gel synthetic strategy involving the hydrolysis/condensation of TMOS assisted by PEG as templating agent and the grafting of preformed titania nanocrystals onto the macropore walls of the silica matrix. In order to anchor TiO2 particles to the surface of SiO2, avoiding their embedding into silica matrix, functionalization with carboxylic acid or amine derivatives was carried out. The function-alization induces the confinement of titania nanocrystals in PEG, during the silica formation, and allows their dispersion on the silica surface. TiO2-SiO2 materials exhibit high thermal and chemical stability and a photocatalytic activity in the phenol mineralization comparable to that of powder TiO2 in slurry (half degradation time ~120 min). These results suggest that the immobilization procedure here reported provides high accessibility of the catalyst active sites preserving the functional properties of the photoactive catalyst.
机译:通过新颖的溶胶-凝胶合成策略获得了具有与浆料粉状TiO2相似的光催化特性的TiO2-SiO2复合材料,该策略涉及以PEG为模板剂辅助的TMOS的水解/缩合反应,以及将预先形成的二氧化钛纳米晶体接枝到TiO2的大孔壁上。二氧化硅基质。为了将TiO 2颗粒锚固在SiO 2的表面上,避免其嵌入二氧化硅基质中,进行了用羧酸或胺衍生物的官能化。官能化在二氧化硅形成过程中引起二氧化钛纳米晶体在PEG中的封闭,并使它们分散在二氧化硅表面上。 TiO2-SiO2材料具有很高的热稳定性和化学稳定性,并且在苯酚矿化中具有与浆液中的TiO2粉末相当的光催化活性(半降解时间约120分钟)。这些结果表明,本文报道的固定方法提供了催化剂活性位点的高可及性,从而保留了光活性催化剂的功能性质。

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