Yunming Gao
Magnesia-stabilised zirconia solid electrolyte assisted electrochemical investigation of iron ions in the SiO2-CaO-MgO-Al2O3 molten slag at 1723 K
Gao, Yunming; Yang, Chuanghuang; Zhang, Canlei; Qin, Qingwei; Chen, George Z.
Authors
Chuanghuang Yang
Canlei Zhang
Qingwei Qin
Professor GEORGE CHEN GEORGE.CHEN@NOTTINGHAM.AC.UK
PROFESSOR OF ELECTROCHEMICAL TECHNOLOGIES
Abstract
Production of metallic iron through molten oxide electrolysis using inert electrodes is an alternative route for fast ironmaking without CO2 emissions. The fact that many inorganic oxides melt at ultrahigh temperatures (>1500 K) challenges conventional electro-analytical techniques used in aqueous, organic and molten salt electrolytes. However, in order to design a feasible and effective electrolytic process, it is necessary to best understand the electrochemical properties of iron ions in molten oxide electrolytes. In this work, a magnesia-stabilised zirconia (MSZ) tube with a closed end was used to construct an integrated three-electrode cell with the “MSZ | Pt | O2 (air)” assembly functioning as the solid electrolyte, the reference electrode and also the counter electrode. Electrochemical reduction of iron ions was systematically investigated on an iridium (Ir) wire working electrode in the SiO2-CaO-MgO-Al2O3 molten slag at 1723 K by cyclic voltammetry (CV), square wave voltammetry (SWV), chronopotentiometry (CP) and potentiostatic electrolysis (PE). The results show that the electro-reduction of the Fe2+ ion to Fe on the Ir electrode in the molten slag follows a single two-electron transfer step, and the rate of the process is diffusion controlled. The peak current on the obtained CVs is proportional to the concentration of the Fe2+ ion in the molten slag and the square root of scan rate. The diffusion coefficient of Fe2+ ions in the molten slag containing 5 wt% FeO at 1723 K was derived to be (3.43 ± 0.06)×10-6 cm2 s-1 from CP analysis. However, a couple of following processes, i.e. alloy formation on the Ir electrode surface and interdiffusion were found to affect the kinetics of iron deposition. An ECC mechanism is proposed to account for the CV observations. The findings from this work confirm that zirconia-based solid electrolytes can play an important role in electrochemical fundamental research in high temperature molten slag electrolytes.
Citation
Gao, Y., Yang, C., Zhang, C., Qin, Q., & Chen, G. Z. (2017). Magnesia-stabilised zirconia solid electrolyte assisted electrochemical investigation of iron ions in the SiO2-CaO-MgO-Al2O3 molten slag at 1723 K. Physical Chemistry Chemical Physics, 19(24), 15876-15890. https://doi.org/10.1039/C7CP01945A
Journal Article Type | Article |
---|---|
Acceptance Date | May 23, 2017 |
Online Publication Date | May 25, 2017 |
Publication Date | Jun 28, 2017 |
Deposit Date | Jun 6, 2017 |
Publicly Available Date | Jun 6, 2017 |
Journal | Physical Chemistry Chemical Physics |
Print ISSN | 1463-9076 |
Electronic ISSN | 1463-9084 |
Publisher | Royal Society of Chemistry |
Peer Reviewed | Peer Reviewed |
Volume | 19 |
Issue | 24 |
Pages | 15876-15890 |
DOI | https://doi.org/10.1039/C7CP01945A |
Public URL | https://nottingham-repository.worktribe.com/output/868874 |
Publisher URL | http://pubs.rsc.org/en/Content/ArticleLanding/2017/CP/C7CP01945A#!divAbstract |
Additional Information | : This document is Similarity Check deposited; : Yunming Gao (ORCID); : George Z. Chen (ORCID); : George Z. Chen (ResearcherID); : The PCCP Owner Societies have an exclusive publication licence for this journal; : Single-blind; : Received 27 March 2017; Accepted 23 May 2017; Accepted Manuscript published 25 May 2017; Advance Article published 7 June 2017; Version of Record published 21 June 2017 |
Contract Date | Jun 6, 2017 |
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