Highly crystalline metal oxide nanoparticles such as CoO, ZnO, Fe(3)O(4), MnO, Mn(3)O(4), and BaTiO(3) were synthesized in just a few minutes by reacting metal alkoxides, acetates or acetylacetonates with benzyl alcohol under microwave heating.
Indium tin oxide nanoparticles with tin oxide contents varying from 2 to 30 wt % have been synthesized
via a nonaqueous sol−gel procedure involving the solvothermal treatment of indium acetylacetonate and
tin tert-butoxide in benzyl alcohol. According to powder X-ray diffraction analysis combined with Rietveld
refinement all the materials are crystalline with the cubic bixbyite structure of indium oxide without any
indication of SnO2 as an additional phase. Transmission electron microscopy studies proved that the
nearly spherical particles are relatively uniform in size and shape with crystallite sizes in the range of
5−10 nm. X-ray photoelectron spectroscopy results showed that the final composition of the nanoparticles
coincided well with the initial indium acetylacetonate-to-tin tert-butoxide ratio. Furthermore, a high amount
of oxygen vacancies was detected, which contribute to the good electrical conductivity of the nanoparticles.
Conductivity measurements on the as-synthesized nanopowders pressed into pellets showed a maximum
conductivity of 2.56 S/cm at a dopant concentration of 15 wt % and can be further increased to 52.6
S/cm upon annealing under a nitrogen atmosphere.
The direct synthesis of crystalline titania nanorods by sol-gel chemistry in a special ionic liquid is reported. Unexpectedly, the high-temperature modification, rutile, is obtained directly under ambient conditions. X-ray diffraction and high-resolution transmission electron microscopy measurements support the highly crystalline and structural quality of the sample. The phase-directing property of the ionic liquids is attributable to the imide group in the counter ion, which exhibits strong interaction with specific rutile faces. Lithium insertion experiments were performed and revealed high and reversible loading capacities of up to 200 mAh g(-1).
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