Efficient photocatalytic hydrogen production over titanate/titania nanostructures modified with nickel
-
Add time:08/01/2019 Source:sciencedirect.com
Nickel-modified titanate/TiO2 catalysts were prepared by deposition of nickel ions onto hydrothermally prepared titanate supports, followed by hydrogen temperature-programmed reduction. Two different nickel precursors (hydroxide and carbonate) were used to tune reducibility and to vary the crystal phase structure of the final catalysts. The precursor reducibility and functional properties of the final catalysts were investigated systematically using various characterisation techniques. The results revealed a more facile reduction of the hydroxide precursor compared to its carbonate counterpart. Moreover, it was found that the formation of the anatase phase was favoured by the use of the hydroxide precipitation agent. The photocatalytic activity towards hydrogen production of the prepared catalysts was evaluated in the presence of 2-propanol under simulated solar light irradiation. A thorough study of the photocatalytic performance of the synthesised catalysts was conducted as a function of the precipitation agent used and the reduction temperature applied. The catalyst with dominant anatase crystal phase displayed the highest photocatalytic activity with a maximum H2 production rate of 1040 μmol h−1 g−1, this being more than four times higher than that of its carbonate counterpart. The catalysts with titanate structure showed similar activity, independent of the precipitation method used. The nanotubular structure was found to be the dominant factor in the stability of photocatalysts under long-run working conditions.
We also recommend Trading Suppliers and Manufacturers of NICKEL(II) HYDROXIDE CARBONATE (cas 12011-78-8). Pls Click Website Link as below: cas 12011-78-8 suppliers
Prev:Synthesis and characterisation of POCsp3OP supported Ni(II) hydroxo, hydroxycarbonyl and carbonate complexes
Next:Facile synthesis and improved photocatalytic performance of Ag-AgCl photocatalyst by loading basic zinc carbonate) - 【Back】【Close 】【Print】【Add to favorite 】
- Related Information
- Synthesis and characterisation of POCsp3OP supported Ni(II) hydroxo, hydroxycarbonyl and carbonate complexes07/31/2019
- Temperature dependent substrate-free facile synthesis for hierarchical sunflower-like nickel–copper carbonate hydroxide with superior electrochemical performance for solid state asymmetric supercapacitor07/30/2019
- Ternary non-noble metal zinc-nickel-cobalt carbonate hydroxide cocatalysts toward highly efficient photoelectrochemical water splitting07/29/2019
- Belt-like nickel hydroxide carbonate/reduced graphene oxide hybrids: Synthesis and performance as supercapacitor electrodes07/28/2019
- Ultrafine nickel–copper carbonate hydroxide hierarchical nanowire networks for high-performance supercapacitor electrodes07/27/2019
- Micelles directed preparation of ternary cobalt hydroxide carbonate-nickel hydroxide-reduced graphene oxide composite porous nanowire arrays with superior faradic capacitance performance07/26/2019
- Removal of the heavy metal ion nickel (II) via an adsorption method using flower globular magnesium hydroxide07/25/2019
- Electrochemical performance of hydrothermally synthesized flower-like α-nickel hydroxide07/24/2019
-
Health and Chemical more >
-
Related Products
- Nickel(II) 1,4,8,11,15,18,22,25-octabutoxy-29H,31H-phthalocyanine
- Nickel(II) acetate tetrahydrate
- Nickel(II) acetylacetonate dihydrate
- Nickel(II) carbonate basic tetrahydrate
- Nickel(II) chloride hexahydrate
- Nickel(II) EDTA complex
- Nickel(II) fluoride tetrahydrate
- Nickel(II) Fluosilicate (1:1)
- Nickel(II) hydroxide
- Nickel(II) isodecyl ortho-phosphate (3:2)


