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An efficient Fe2O3/FeS heterostructures water oxidation catalyst
Affiliation:1. Department of Chemistry, Allama Iqbal Open University, Islamabad, 44000, Pakistan;2. Department of Environmental Science, Allama Iqbal Open University, Islamabad, 44000 Pakistan;3. Aleksander Butlerov Institute of Chemistry, Kazan Federal University, Kazan, 420008, 1/29 Lobachevskogo str., Russian Federation;4. Department of Chemistry, Quaid-i-Azam University, Islamabad, 45320, Pakistan;5. Department of Chemistry, University of Education, Lahore, Multan Campus, 60700, Pakistan;6. Faculty of Basic Sciences, Sardar Bahadur Khan Women''s University Quetta, 87300, Pakistan
Abstract:Slow kinetics and insufficient understanding of the perceptual design of oxygen evolution reaction (OER) electrocatalysts are major obstacles. Overcoming these challenges, heterostructures have recently attracted attention because they encourage alternative OER electrocatalysts with active structural features. In this study, synthesis, characterization and electrochemical evaluation of the heterostructure of iron oxide/iron sulfide (Fe2O3/FeS) and its counterparts, iron oxide (Fe2O3) and iron sulfide (FeS) are reported. The structural features of as-synthesized electrocatalysts have been evaluated by infrared spectroscopy, powder X-ray diffraction study and scanning electron microscopy. Fe2O3/FeS was found to be a stable electrocatalyst for efficient water splitting, which initiates OER at a surprisingly low potential of 1.49 V (vs RHE) in 1 M potassium hydroxide. The Fe2O3/FeS electrocatalyst drives OER with a current density of 40 mA cm?2 at overpotential of 370 mV and a Tafel slope of 90 mV dec?1. Its performance is better than its counterparts (Fe2O3 and FeS) under similar electrochemical conditions. At an applied potential of 1.65 V (vs RHE), continuous oxygen production for several hours revealed the long-term stability and effective activity of the Fe2O3/FeS electrocatalyst for OER. The as-developed Fe2O3/FeS heterostructure provides an effective alternative low-cost metal-based electrocatalysts for OER.
Keywords:Heterostructure  Electrocatalyst  Oxygen evolution reaction  Water oxidation  Overpotential
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