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Researchers develop earth-abundant photocatalyst for conversion of ammonia into hydrogen

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and Princeton University’s Andlinger Center for Energy and the Environment have created a scalable photocatalyst that can convert ammonia into hydrogen fuel. This result demonstrates the potential for highly efficient, electrically driven production of hydrogen from an ammonia carrier with earth-abundant transition metals.

Hydrogen 273
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Rice team demonstrates more efficient photocatalyst for converting ammonia to hydrogen

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Rice University nanoscientists have demonstrated a new catalyst that can convert ammonia into hydrogen fuel at ambient pressure using only light energy, mainly due to a plasmonic effect that makes the catalyst more efficient. Photo by LANP/Rice University).

Hydrogen 287
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Successful demonstration of FlexMethanol conversion of wind power to methanol

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In Germany, BSE Engineering and the Institute for Renewable Energy Systems at Stralsund University of Applied Sciences (IRES) have demonstrated the conversion of wind power into renewable methanol. The team uses green electricity to split water into hydrogen and oxygen in an electrolysis step.

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SoCalGas, partners developing technology to make carbon fiber during hydrogen production from methane; reducing the cost of H2 and cutting GHG

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(SoCalGas) is partnering with a development team to advance a new process that converts natural gas to hydrogen, carbon fiber, and carbon nanotubes. In addition, this technology will virtually eliminate CO 2 emissions from the methane-to-hydrogen process. billion in 2016 and is expected to increase to $8.7

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SOLETAIR project produces first 200 liters of synthetic fuel from solar power and atmospheric CO2

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Project partners include INERATEC, a spinoff of Karlsruhe Institute of Technology (KIT), VTT Technical Research Center of Finland and Lappeenranta University of Technology (LUT). The mobile chemical pilot plant produces gasoline, diesel, and kerosene from regenerative hydrogen and carbon dioxide. The SOLETAIR project started in 2016.

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New catalyst system for converting castor-oil-derived ricinoleic acid methyl ester into jet fuel; up to 90% carbon selectivity

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Researchers at Beijing University of Chemical Technology have developed a catalytic process for the selective conversion of ricinoleic acid methyl ester—derived from castor oil—into jet fuel. Methyl 10-undecenoate was converted into branched paraffin with limited carbon loss. —Zhou et al. doi: 10.1039/C6GC00942E.

Convert 150
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Elemental boron effective photothermocatalyst for the conversion of CO2 for fuels and chemicals

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This could form the basis of a new, more efficient process for converting the greenhouse gas CO 2 into a useful carbon source for the production of fuels and chemical products. Their material of choice is powdered elemental boron, which very strongly absorbs sunlight and efficiently converts it photothermically, heating itself up remarkably.