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Georgia Tech team develops conversion-type iron-fluoride Li battery cathode with solid polymer electrolyte

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Researchers at Georgia Tech have developed a promising new conversion-type cathode and electrolyte system that replaces expensive metals and traditional liquid electrolyte with lower cost transition metal fluorides and a solid polymer electrolyte. A paper on their work is published in the journal Nature Materials.

Polymer 230
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Georgia Tech team develops melt-infiltration technique for scalable production of solid-state batteries

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The melt-infiltration technology developed by materials science researchers at the Georgia Institute of Technology uses solid-state electrolytes with low melting points that are infiltrated into dense, thermally stable electrodes at moderately elevated temperatures (~300? At these lower temperatures, fabrication is much faster and easier.

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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. Georgia Institute of Technology. Decontamination of Non-recyclable MSW and Preprocessing for Conversion to Diesel. Electrolyzers For CO 2 Conversion from BioSources.

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DOE to award $118M to 17 projects to accelerate domestic biofuel production

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The goal of the project is to continue to develop a circular carbon economy that replaces the petroleum-based chemicals in consumer products with algae-derived and biodegradable polymers. This project will demonstrate the conversion of gaseous carbon wood wastes (terpenes) to renewable Terpenes SAF blending components. Viridos, Inc.,

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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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Georgia Tech Research Corporation. Georgia Tech will develop a new approach to internally cool permanent magnet motors. Novel Polymer-enhanced Rechargeable Aluminum-Alkaline Battery Technology – $2,000,000. Stable Diacid Coordinated Quaternary Ammonium Polymers for 80-230 °C Fuel Cells – $2,900,000. Ionic Materials, Inc.

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Roadmap shows how to improve lignocellulosic biofuel biorefining with high-value products from isolated lignin

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The resulting roadmap uses the integration of genetic engineering with analytical chemistry tools to tailor the structure of lignin and its isolation so it can be used for materials, chemicals and fuels, said lead author Arthur Ragauskas, a professor in the School of Chemistry and Biochemistry at the Georgia Institute of Technology.

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DOE awarding $72M to 27 projects to develop and advance carbon capture technologies, including direct air capture

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Georgia Tech Research Corporation plans to develop and test MIL-101(Cr)-based sorbents in the form of powders, in composite polymer/MOF fibers and on the surface of monoliths. High-Performance, Hybrid Polymer Membrane for Carbon Dioxide Separation from Ambient Air. thickness, permeability, selectivity, etc.)

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