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Stabilizing metastable ferroelectric tungsten trioxide phase at room temperature via solvothermal synthesis and millisecond pulsed laser irradiation.

Authors :
Qiu, Zanlin
Rahaman, Mohammad Mahafuzur
Panton, Boyd
Jinschek, Joerg R.
Gouma, Pelagia-Irene (Perena)
Source :
Ceramics International. Sep2024:Part B, Vol. 50 Issue 17, p31267-31277. 11p.
Publication Year :
2024

Abstract

Epsilon tungsten trioxide (ε-WO 3) has drawn much attention for its unique gas sensing and ferroelectric properties. However, the strong metastability of ε-phase makes it extremely difficult to stabilize the phase at room temperature. For a long time, it was believed that the ε-phase can only be stabilized by rapid solidification processing. In this study, ε-WO 3 was stabilized by employing solvothermal synthesis and subsequent annealing, with the help of Cr- and Ti-dopants. Structural characterization using XRD, Raman and TEM analysis revealed that the as-annealed powders are a mixture of ε-WO 3 and γ-WO 3 and the fraction of ε-WO 3 is directly correlated with the Cr- and Ti-doping levels. Rietveld refinement suggests that the maximum obtainable fractions of ε-phase in as-annealed WO 3 are ∼68 % for Cr-doping and ∼87 % for Ti-doping. The growth mechanism is that solvothermal synthesis produced Cr- and Ti-doped W 18 O 49 and subsequent annealing resulted in phase transition from W 18 O 49 to ε-WO 3. The XPS analysis reveals the phase stabilization mechanism to involve the interstitial sites of WO 3 being occupied by Cr3+ and Ti4+ dopants, resulting in structure distortions. The fraction of ε-WO 3 can be further improved to almost 100 % by introducing kinetic constraints using pulsed laser irradiation to rapidly melt and solidify the WO 3 (in several milliseconds). A viable solvothermal synthesis route for ε-WO 3 and the feasibility to produce ε-phase via additive manufacturing are illustrated in this work. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
02728842
Volume :
50
Issue :
17
Database :
Academic Search Index
Journal :
Ceramics International
Publication Type :
Academic Journal
Accession number :
178091012
Full Text :
https://doi.org/10.1016/j.ceramint.2024.05.430