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Structural, Textural, and Catalytic Properties of Ti(IV)‐Fe(III) Mixed Oxides Prepared by a Modified Sol‐Gel Route
Author(s) -
Khaleel Abbas,
AlZuhair Sulaiman,
AlMamary Said,
Parvin Maliha,
Khan Ahmad H.
Publication year - 2017
Publication title -
chemistryselect
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.437
H-Index - 34
ISSN - 2365-6549
DOI - 10.1002/slct.201601742
Subject(s) - calcination , catalysis , mixed oxide , rutile , mesoporous material , oxide , materials science , sol gel , toluene , inorganic chemistry , metal , chemical engineering , chemistry , nuclear chemistry , metallurgy , nanotechnology , organic chemistry , engineering
Iron(III) titanates and Fe(III)‐modified titania were prepared via a modified sol‐gel method. Structures, texture and phase transformations after calcination at different temperatures were investigated. Fe(III) ions below 10 % were well dispersed in the titania lattice. Pseudorutile (Fe 2 Ti 3 O 9 ) was prepared starting with a solution containing 40 % Fe(III) and calcining the product at 500 °C. Starting with equal concentrations of both metal ions resulted in a mixture of pseudorutile and pseudobrookite, Fe 2 TiO 5 . However, using 66.7 % Fe(III) to prepare pseudobrookite resulted in segregation of trace amounts of iron(III) oxide and rutile. All mixed oxides possessed significantly higher surface areas (178‐217 m 2 /g), larger pore volumes (0.16‐0.27 cc/g), and more homogeneous mesopores compared with the parent single metal oxides. Fe 2 TiO 5 showed promising catalytic activity in the catalytic oxidation of toluene. A conversion of 100 % to CO 2 was obtained at temperatures ≥300 °C and its catalytic activity correlates with its enhanced reducibility as studied by H 2 ‐temperature programmed reduction (H 2 ‐TPR).

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