WO3 nano-ribbons: their phase transformation from tungstite (WO3·H2O) to tungsten oxide (WO3)

被引:0
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作者
Majid Ahmadi
Satyaprakash Sahoo
Reza Younesi
Anand P. S. Gaur
Ram S. Katiyar
Maxime J-F Guinel
机构
[1] University of Puerto Rico,Department of Physics, College of Natural Sciences
[2] Technical University of Denmark,Department of Energy Conversion and Storage
[3] University of Puerto Rico,Department of Chemistry, College of Natural Sciences
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关键词
Select Area Electron Diffraction; Heat Treatment Temperature; Tungsten Oxide; Select Area Electron Diffraction Pattern; Resistive Switching;
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摘要
Tungsten oxide (WO3) nano-ribbons (NRs) were obtained by annealing tungstite (WO3·H2O) NRs. The latter was synthesized below room temperature using a simple, environmentally benign, and low cost aging treatment of precursors made by adding hydrochloric acid to diluted sodium tungstate solutions (Na2WO4·2H2O). WO3 generates significant interests and is being used in a growing variety of applications. It is therefore important to identify suitable methods of production and better understand its properties. The phase transformation was observed to be initiated between 200 and 300 °C, and the crystallographic structure of the NRs changed from orthorhombic WO3·H2O to monoclinic WO3. It was rigorously studied by annealing a series of samples ex situ in ambient air up to 800 °C and characterizing them afterward. A temperature-dependent Raman spectroscopy study was performed on tungstite NRs between minus 180 and 700 °C. Also, in situ heating experiments in the transmission electron microscope allowed for the direct observation of the phase transformation. Powder X-ray diffraction, electron diffraction, electron energy-loss spectroscopy, and X-ray photoelectron spectroscopy were employed to characterize precisely this transformation.
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页码:5899 / 5909
页数:10
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