Block Copolymer-Assisted Synthesis of Mesoporous, Multicomponent Oxides by Nonhydrolytic, Thermolytic Decomposition of Molecular Precursors in Nonpolar Media

A general route for the synthesis of homogeneous mixed-element oxides, based on the use of block polyalkylene oxide copolymers and single-source molecular precursors, is described. Thermolytic decomposition of the molecular precursors in the presence of an anhydrous solution of the block copolymer (...

Full description

Saved in:
Bibliographic Details
Published inChemistry of materials Vol. 13; no. 10; pp. 3554 - 3563
Main Authors Kriesel, Joshua W, Sander, Melissa S, Tilley, T. Don
Format Journal Article
LanguageEnglish
Published American Chemical Society 15.10.2001
Online AccessGet full text

Cover

Loading…
More Information
Summary:A general route for the synthesis of homogeneous mixed-element oxides, based on the use of block polyalkylene oxide copolymers and single-source molecular precursors, is described. Thermolytic decomposition of the molecular precursors in the presence of an anhydrous solution of the block copolymer (in toluene) led to monolithic gels. The polymeric structure-directing agent was then removed by calcination at 500 °C for 3 h under O2. The generality of this synthetic approach is demonstrated with the molecular precursors Zr[OSi(O t Bu)3]4, (EtO)2Ta[OSi(O t Bu)3]3, Fe[OSi(O t Bu)3]3·THF and [Al(O i Pr)2O2P(O t Bu)2]4, which have been converted to the corresponding mesostructured materials ZrO2·4SiO2, Ta2O5·6SiO2, Fe2O3·6SiO2, and AlPO4 (denoted UCB1-ZrSi, UCB1-TaSi, UCB1-FeSi, and UCB1-AlP, respectively). These mesostructured materials, characterized by TEM, XRD, N2 porosimetry, EDX, and NMR spectroscopy, exhibit wormholelike pore structures, high surface areas, and narrow pore size distributions.
Bibliography:istex:435F7FCC819E3B486FBBA20133EA9D33E498AD6A
ark:/67375/TPS-QD4C0J4K-1
ISSN:0897-4756
1520-5002
DOI:10.1021/cm010068t