2016
DOI: 10.1007/s40831-016-0062-8
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Sustainable Electrochemical Synthesis of Large Grain- or Catalyst-Sized Iron

Abstract: Electrolytic production of iron in molten salts by splitting iron oxide into iron metal and O 2 is a low-carbon footprint alternative to the massive CO 2 emissions associated with conventional carbothermal iron production and permits. This study advances a CO 2 -free method for iron production, by modifying iron electrosynthesis in molten Li 2 CO 3 to control iron product particle size and by decreasing the electrolyte extracted with the pure iron product. We present the first study of electrolytic iron micro-… Show more

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Cited by 10 publications
(11 citation statements)
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“…Both carbon monoxide solar fuel (at 950°C) and solid carbon (at 750°C) products were separately demonstrated (Licht, et al, 2010). Subsequent to this, alternative high temperature redox chemistries were developed to apply this solar thermal electrochemical process (STEP) to the generation of a number of staple products including ammonia, organics, calcium oxide, iron and methane fuel (Li, et al, 2011;Li, et al, 2015;Li, et al, 2016;Licht, 2011;Licht, et al, 2012;Licht, et al, 2014;Zhu, et al, 2016). However, fuels from sunlight including methane, syngas, or a coal equivalent (Li, et al, 2011;Li, et al, 2015;, are in the value range of $100 per ton product providing no financial incentive for CO 2 mitigation.…”
Section: Introductionmentioning
confidence: 99%
“…Both carbon monoxide solar fuel (at 950°C) and solid carbon (at 750°C) products were separately demonstrated (Licht, et al, 2010). Subsequent to this, alternative high temperature redox chemistries were developed to apply this solar thermal electrochemical process (STEP) to the generation of a number of staple products including ammonia, organics, calcium oxide, iron and methane fuel (Li, et al, 2011;Li, et al, 2015;Li, et al, 2016;Licht, 2011;Licht, et al, 2012;Licht, et al, 2014;Zhu, et al, 2016). However, fuels from sunlight including methane, syngas, or a coal equivalent (Li, et al, 2011;Li, et al, 2015;, are in the value range of $100 per ton product providing no financial incentive for CO 2 mitigation.…”
Section: Introductionmentioning
confidence: 99%
“…STEP iron deposited particle size is inversely proportional to applied electrolysis current; low current density electrolysis 20mA cm -2 form 500 µm particles, while high 1Acm -2 produces 10 µm iron particles; shorter electrolysis time and added Li 2 O further decreased the observed iron size. 23 A combination of the observed production of ammonia in molten hydroxides from water and nitrogen, combined with the efficient production of small particle iron catalysts in molten carbonates, suggests a mechanistic pathway for the STEP production of ammonia.…”
Section: Resultsmentioning
confidence: 99%
“…STEP requires high temperature with molten carbonate to deposit and reform the iron catalyst necessary for sustainable iron. [19][20][21][22][23] Molten hydroxide can be added to establish a foundation for proton availability (2MOH ⇌ M 2 O + H 2 O). However, high temperature dehydrates the electrolyte.…”
mentioning
confidence: 99%
“…In the supporting information, we explore under various pressures, temperatures, and electrolytes the co-production of ammonia and iron oxide catalysis. These experiments, lead us to believe that high temperatures can deactivate the ammonia electrochemical synthesis process by dehydrating the electrolyte to inhibit the requisite hydrogen source [70][71] This, and opening the pathway to utilize polymer membranes, which would degrade at higher temperature in the electrosynthesis, is why we have moved to more ambient conditions.…”
Section: Introductionmentioning
confidence: 99%