Abstract
Bismuth oxide is an important functional material, and its controllable preparation has always been a hot spot for research. One dimensional quadrangular prism Bi2O3 nanorods were controllably synthesized successfully by a reverse microemulsion route with Triton X-100/n-heptane/n-amyl alcohol/water as microemulsion system. X-ray diffraction (XRD) and field-emission scanning electron microscope (FESEM) were employed to characterize the obtained Bi2O3 products. The results showed that with the increase of calcination temperature, tetragonal β-Bi2O3 transformed into monoclinic α-Bi2O3. The as-prepared one dimensional quadrangular prism nanorods were 50~100 nm in diameter and 300~600 nm in length. Formation mechanism analysis of the precursor showed that oriented attachment, self-organization and Ostwald ripening played important roles in the formation of the microstructure. Ultraviolet-visible diffuse reflectance spectrum showed that the metastable β-Bi2O3 sample presented photoabsorption property from UV light region to visible light range (absorption band edge was 550 nm, longer than that of stable α-Bi2O3 of 460 nm), belonging to the absorption caused by electron transition from valence band to conduction band, which was Bi2O3 direct band gap absorption. The band gap of the β-Bi2O3 was estimated to be 2.30 eV, which was lower than that of α-Bi2O3 of 2.74 eV. The fluorescence spectrum of quadrangular prism β-Bi2O3 nanorods showed broad emission (400~600 nm) with a strong blue emission peak at ~466 nm due to Bi3+ luminescence from the 3P1 excited states to the 1S0 ground state. The green peak at ~562 nm was from an impurity trap associated with oxygen vacancies interacting with interfacial bismuth vacancies.
Translated title of the contribution | Synthesis of one dimensional quadrangular prism bi nanorods by reverse microemulsion and optical properties |
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Original language | Chinese (Traditional) |
Pages (from-to) | 561-566 |
Number of pages | 6 |
Journal | Xiyou jinshu |
Volume | 42 |
Issue number | 6 |
DOIs | |
Publication status | Published - 1 Jun 2018 |