Langmuir · 2014 · 59 citations · 31 references
EngineeringWo3 WiresChemistryNanostructured MaterialsWo3 NanorodsChemical EngineeringElectron MicroscopyNanostructure SynthesisMaterials ScienceNanoscale SystemNanotechnologySurface ElectrochemistryHydrothermal ConditionsElectrochemical ProcessNanocrystalline MaterialElectrochemistryNanomaterialsSelf-assemblyApplied PhysicsNanofabricationHighly Crystalline NanowiresNanostructures
WO3 nanorods and wires were obtained via hydrothermal synthesis using sodium tungstate as a precursor and either oxalic acid, citric acid, or poly(methacrylic acid) as a stabilizing agent. Transmission electron microscopy images showed that the organic acids with different numbers of carboxylic groups per molecule influence the final sizes and stacking nanostructures of WO3 wires. Three-dimensional electron diffraction tomography of a single nanocrystal revealed a hexagonal WO3 structure with preferential growth along the c-axis, which was confirmed by high-resolution transmission electron microscopy. WO3 nanowires were also spin-coated onto an indium tin oxide/glass conducting substrate, resulting in the formation of a film that was characterized by scanning electron microscopy. Finally, cyclic voltammetry measurements performed on the WO3 thin film showed voltammograms typical for the WO3 redox process.
31