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By using a hydrothermal method, a series of Eu3+ concentration dependent GdF3 nanocrystals have been synthesized.
Unsupported NiMo sulfide catalysts were prepared from ammonium tetrathiomolybdate (ATTM) and nickel nitrate by using a hydrothermal synthesis method involving water, organic solvent and hydrogen.
It was prepared by using a hydrothermal assisted-microwave process as an improved competitive production method over the traditional hydrothermal process.
These highly crystalline nanorods, with an ordered spinel structure and diameters and lengths around 130 nm and 1.2 μm, respectively, were synthesized in two steps by using a hydrothermal reaction to produce β-MnO2 nanorods followed by solid-state lithiation.
Multi-wall carbon nanotubes decorated with tungsten sulfide (MWCNTs-WS2) were synthesized by using a hydrothermal method, and used as a low-cost platinum-free counter electrode for dye-sensitized solar cell (DSSC).
Antimony doped SnO2 (ATO) microspheres composed of ATO nanoparticles were prepared by using a hydrothermal process in a nonaqueous and template-free solution from the inorganic precursors (SnCl4 and Sb OC2H5 3).
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Here we report the application of stable stannite phase CuZn2AlS4 (CZAS) nanocrystals (NCs), prepared by using a facile hydrothermal approach, as electron acceptor and photo-active material in organic-inorganic hybrid solar cells, for the first time.
Here, we fabricate successfully the Zn4(OH)6CO3·H2O (ZCHH) microspheres which consist of the nanoflakes by using a simple hydrothermal process, and demonstrate that the ZCHH precursor can be transformed utterly to ZnO porous microspheres after calcination.
The flower-like nickel-zinc-cobalt (Ni-Zn-Co) mixed metal oxide nanowire arrays have been directly synthesized on nickel foam by using a simple hydrothermal method and subsequent thermal treatment.
Highly oriented ZnO nanorod arrays with controlled diameter and length, narrow size distribution and high orientation consistency have been successfully prepared on ITO substrates at different growth temperatures by using a simple hydrothermal method.
In this work, the oil-absorbing MnO2/poly n-butylacrylate-co-butyl MnO2/poly n-butylacrylate-co-butyle) resin coMnO2/poly n-butylacrylate-co-butyl was synthesized by using a coMnO2/poly n-butylacrylate-co-butylrowave polymerization method, and was successfully applied to absorb oils and organic solvents.
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