4.8 Article

Synthesis and Photocatalytic Activity of Titania Monoliths Prepared with Controlled Macro- and Mesopore Structure

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 4, 期 8, 页码 4123-4130

出版社

AMER CHEMICAL SOC
DOI: 10.1021/am300880q

关键词

titania; hierarchical pore structures; monoliths; photocatalytic activity; Pluronic F127; furfuryl alcohol

资金

  1. Australian Research Council [DP0877428, FT0990583]
  2. Argentina's Agencia Nacional de Promocion Cientifica y Tecnologica [ANPCyT PICT 34518, PICT 1848]
  3. Conicet
  4. University of Melbourne
  5. Australian Research Council Nanotechnology Network Overseas Travel Fellowship
  6. Albert Shimmins Memorial Fund
  7. Australian Research Council [DP0877428] Funding Source: Australian Research Council

向作者/读者索取更多资源

Herein, we report a one-pot synthesis of crack-free titania monoliths with hierarchical macro-mesoporosity and crystalline anatase walls. Bimodal macroporosity is created through the polymer-induced phase separation of poly(furfuryl alcohol). The cationic polymerization of furfuryl alcohol is performed in situ and subsequently the polymer becomes immiscible with the aqueous phase, which includes titanic acid. Addition of template, Pluronic F127, increases the mesopore volume and diameter of the resulting titania, as the poly(ethylene glycol) block interacts with the titania precursor, leading to assisted assembly of the metal oxide framework. The hydrophobic poly(propylene glycol) micelle core could itself be swollen with monomeric and oligomeric furfuryl alcohol, allowing for mesopores as large as 18 nm. Variations in synthesis parameters affect porosity; for instance furfuryl alcohol content changes the size and texture of the macropores, water content changes the grain size of the titania and Pluronic F127 content changes the size and volume of the mesopore. Morphological manipulation improves the photocatalytic degradation of methylene blue. Light can penetrate several millimeters into the porous monolith, giving these materials possible application in commercial devices.

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