Sustainable Iron Production by Low Temperature Electrolysis of Fe2O3 Colloidal Electrode

电解 材料科学 碳纤维 冶金 电极 化学工程 化学 复合材料 电解质 物理化学 复合数 工程类
作者
Panya Thanwisai,Yan Wang
出处
期刊:Meeting abstracts 卷期号:MA2023-01 (24): 1615-1615
标识
DOI:10.1149/ma2023-01241615mtgabs
摘要

Fe is one of the most important metals that has been used in nearly every construction of man. Currently, Fe is manufactured by a carbothermic reduction by which Fe 2 O 3 ores and carbon are reduced at >2000°C in a blast furnace. This conventional method is environmentally hazardous as it emits almost 2 tons of CO 2 per every ton of crude iron produced, accounting for 5% of global CO 2 emission. With the goal of zero CO 2 emission and sustainable development, more advanced technologies of Fe manufacturing are urgently required. Herein, we introduce a novel and sustainable Fe production using a low temperature electrolysis (100°C) of Fe 2 O 3 colloidal electrode. The Fe 2 O 3 colloid with an electronic-ionic conductive network was successfully fabricated which contains Fe 2 O 3 electrochemically active species, carbon and NaOH solution. Carbon acts as an electronic conductor while NaOH solution serves as an ionic conductor. This electrode design helps increase reactive areas for the Fe 2 O 3 reduction process resulting in fast reaction rate. In addition, some organic and inorganic additives were added to enhance an electrolysis efficiency via promoting the reaction and suppressing H 2 evolution parasitic reaction. This method can produce high purity Fe powder with a high current efficiency of 95%. Our zero CO 2 emission method is much greener, and less energy consumptive than the conventional carbothermic process, which potentially revolutionizes the iron and steel industry that has a history of environmental consciousness for many decades.

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