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New inexpensive catalyst for conversion of CO2 to CO could help with storage of renewable energy

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Researchers at the University of Delaware have developed an inexpensive bismuth?carbon carbon monoxide evolving catalyst (Bi-CMEC) that can be used in conjunction with ionic liquids to convert CO 2 to carbon monoxide (CO) using electricity. Carbon Capture and Conversion (CCC) Fuels Power Generation'

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Researchers show mixotrophic fermentation process improves carbon conversion, boosting yields and reducing CO2

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One way to mitigate high feedstock cost is to maximize conversion into the bioproduct of interest. This maximization, though, is limited because of the production of CO 2 during the conversion of sugar into acetyl-CoA in traditional fermentation processes. Wiedel, Jennifer Au, Maciek R. Antoniewicz, Eleftherios T.

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DOE awards $35M to 15 projects in ARPA-E ECOSynBio program to reduce carbon footprint of biofuel production

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As a result, there is a critical need to create new pathways for biofuel conversion that reduces carbon waste, prevents the loss of CO 2 emissions, and in turn, maximizes the amount of renewable fuel a conversion process yields. University of Delaware. The awardees are: LanzaTech, Inc. National Renewable Energy Laboratory.

Carbon 303
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New highly selective and efficient catalyst for reduction of CO2 to CO

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Researchers at the University of Delaware have developed a highly selective nanoporous silver catalyst capable of electrochemically reducing carbon dioxide to carbon monoxide with 92% efficiency. The carbon monoxide then can be used to produce synthetic fuels and chemicals. The researcher reported their findings in Nature Communications.

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DOE awards $97M to 33 bioenergy research and development projects

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Scale-Up of the Primary Conversion Reactor to Generate a Lignin-Derived Cyclohexane Jet Fuel. Microchannel Reactor for Ethanol to n-Butene Conversion. Conversion of 2,3-Butanediol to Biojet Fuel: Scale-up and Technoeconomic Analysis of Energy-Efficient Separations and Fermentative Diol Production. University of Delaware.

Waste 186
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DOE announces more than $65M in public and private funding to commercialize promising energy technologies

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Highly Efficient Electrocatalysts for Direct Conversion Of CO2 To Chemicals, $250,000. Bio-based Insecticides from Thermochemical Conversion of Biomass, $100,000. Wilmington, Delaware). Robust Carbonic Anhydrases for Novel Biological, Sustainable and Low Energy CO2 Scrubbing Process from Waste Gases, $250,000.

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ARPA-E announces $98M in funding for 40 OPEN projects; two opposed-piston engines projects receive $10M total

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However, they currently operate using ethanol fuel, converted into hydrogen and carbon monoxide prior to entering the fuel cell in a process called reforming. Developments from the project may be useful for other energy conversion technologies, such as ammonia production and high-temperature direct liquid fuel cells.

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