4.5 Article

Controllable synthesis of a and β-Bi2O3 through anodization of thermally evaporated bismuth and its characterization

期刊

SOLID STATE IONICS
卷 298, 期 -, 页码 23-34

出版社

ELSEVIER SCIENCE BV
DOI: 10.1016/j.ssi.2016.10.017

关键词

Oxides; Thin films; Raman spectroscopy; Crystal structure; Phase transitions

资金

  1. DST-FIST
  2. UGC-SAP
  3. UGC-BSRF

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Novel bismuth trioxide (Bi2O3) nanostructured films were fabricated via anodization using thermally evaporated bismuth films. The thin films were characterized by X-ray diffraction, UV-vis diffuse reflectance spectroscopy, photoluminescence, high resolution scanning electron microscopy and Raman spectroscopy. Our results showed that 300 degrees C annealed Bi2O3, possessed good thermal stability with alpha phase. On annealing above 400 degrees C, nano particles jointed together with an average size of 32 nm. On further increasing the annealing temperature to 600 degrees C, the nanostructures were transformed into metastable (3-Bi2O3 film. The obtained nanostructures in the thin film surface consist of faceted particles of size 75 to 200 nm. The band gap value of bismuth trioxide thin films decreases with increase in annealing temperature. Interference fringes present in the optical reflectance spectra confirmed the formation of smooth and uniform films prepared by anodization. Photoluminescence peaks arised due to the inhibition of spontaneous emission originating through Bi2O3 lattice defects such as oxygen vacancies and Bi interstitials. The gas sensing performance of bismuth trioxide thin films were obtained for the oxidizing gases NO2 and CO2 at room temperature. Sample post annealed at 300 degrees C shows the better sensitivity for NO2 among the other annealed samples. Additionally, the relationship of the crystalline nature with best phase of Bi2O3 for the electrochemical performance was investigated. Among the Bi2O3 samples, Bi-300 and Bi-400 samples with good crystallinity had the highest capacitance of 85 and 90 F/g at the scan rate 3 mV/s. It shows that the Bi2O3 nanostructures can serve as promising electrode materials for supercapacitors. (C) 2016 Elsevier B.V. All rights reserved.

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