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On the formation of dendritic iron from alkaline electrochemical reduction of iron oxide prepared for metal fuel applications

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Abstract

Low-temperature electrochemical reduction (electroreduction) of iron oxides is a promising alternative to the conventional methods for iron production due to its CO2-free operation and relatively low energy consumption. In this work, we demonstrate a novel approach for electrochemical iron production by promoting the formation of dendritic structures during iron electrodeposition, which facilitates the easy harvesting of deposits in powder form. Experiments were conducted using a single pair of parallel plate electrodes, immersed in a mixture of hematite (Fe2O3) powder and aqueous alkaline (NaOH) slurry. The effects of current density, Fe2O3 mass fraction, temperature, and powder size on current efficiency and deposit morphology are investigated. A large quantity of dendritic iron structures is observed when experiments are carried out without stirring and/or applying heat from a heating plate. This condition suggests temperature and (ion/species) concentration gradients in the system. The dendrites are mainly deposited on the cathode's sides, corners, and edges. Different deposits and dendritic structures (compact layer deposit, moss-like deposit, deposit with whisker-like dendrites, and deposit with crystal-like dendrites) are observed as operating conditions change. Overall, a cathodic deposition of metallic iron with a high Faradaic efficiency (≥90 %) is successfully accomplished. The present findings provide new insights into the production of electrolytic iron powder and its future use as a carbon neutral and sustainable fuel/energy carrier.
Original languageEnglish
Article number119931
Number of pages14
JournalChemical Engineering Science
Volume291
DOIs
Publication statusPublished - 5 Jun 2024

Funding

Akmal Irfan Majid thanks the Ministry of Education, Culture, Research, and Technology of the Republic of Indonesia, for their financial support as a doctoral candidate in mechanical engineering at TU/e, via “BPP-LN 2019 Scholarship” scheme (contract number: B/823/D3.2/KD.02.01/2019). The authors would like to acknowledge all members of the “Iron Power Consortium” (this project is also part of this consortium) and the “Intervision Team” of the Power & Flow Group at the Eindhoven University of Technology (TU/e) for fruitful discussions. Gratitude goes to Prof. Michael Golombok (TU/e and Shell Global Solutions International Amsterdam-The Netherlands), Prof. Herbert Zondag (TU/e and TNO-The Netherlands), and Prof. Himawan Bayu Tri Murti Petrus and (Universitas Gadjah Mada-Indonesia) for sharing supportive ideas for this project. Akmal Irfan Majid thanks the Ministry of Education, Culture, Research, and Technology of the Republic of Indonesia, for their financial support as a doctoral candidate in mechanical engineering at TU/e, via “BPP-LN 2019 Scholarship” scheme (contract number: B/823/D3.2/KD.02.01/2019). The authors would like to acknowledge all members of the “Iron Power Consortium” (this project is also part of this consortium) and the “Intervision Team” of the Power & Flow Group at the Eindhoven University of Technology (TU/e) for fruitful discussions. Gratitude goes to Prof. Michael Golombok (TU/e and Shell Global Solutions International Amsterdam-The Netherlands), Prof. Herbert Zondag (TU/e and TNO-The Netherlands), and Prof. Himawan Bayu Tri Murti Petrus and (Universitas Gadjah Mada-Indonesia) for sharing supportive ideas for this project.

Funders
Gadjah Mada University
Shell
Eindhoven University of Technology

    UN SDGs

    This output contributes to the following UN Sustainable Development Goals (SDGs)

    1. SDG 7 - Affordable and Clean Energy
      SDG 7 Affordable and Clean Energy
    2. SDG 13 - Climate Action
      SDG 13 Climate Action

    Keywords

    • Iron oxide reducion
    • Electrodeposition
    • Dendrites
    • Electrolytic iron powder
    • Metal fuels

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