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Berkeley Lab researchers advance hybrid bioinorganic approach to solar-to~chemicals conversion; 50% electrical-to-chemical, 10% solar-to-chemical efficiencies

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A team of researchers at the US Department of Energy (DOE)’s Lawrence Berkeley National Laboratory (Berkeley Lab) have hit a new milestone in their development of a hybrid bioinorganic system for solar-to-chemical energy conversion. Carbohydrates are biomolecules that store the chemical energy used by living cells. Earlier post.)

Solar 150
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Study finds direct seawater splitting has substantial drawbacks to conventional water splitting, offers almost no advantage

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For the implementation of a sustainable energy economy, the greatest challenge is the weather-depending, fluctuating electricity production of wind and solar power plants. To store the green electricity in a highly scalable way, it must be converted into chemical energy.

Water 497
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Wind-to-Hydrogen Tech Goes to Sea

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Wind and solar parks produce a large portion of their energy. Then, as now, wind farms are operating off the world’s coasts—but not all of these offshore sites are connected to the mainland via underwater power cables. Some of the wind farms instead sit in clusters more than 100 kilometers out at sea.

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Researchers demonstrate efficient electrochemical reduction of CO2 to C2+ alcohols

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In a paper published in the journal Joule , they suggest that the results show great potential for the electrocatalytic conversion of CO 2 into value-added chemicals. Electrochemical reduction of carbon dioxide (CO 2 ) is a promising approach to solve both renewable energy storage and carbon-neutral energy cycle. (C

CO2 434
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Geely supporting Danish initiative on e-methanol with vehicle trials in Aalborg

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While the country is one of the world’s largest producers of wind and solar renewable energy, it faces the issue of renewable energy being weather-dependent and prone to fluctuation.

Denmark 446
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CEMEX, Sasol and ENERTRAG partner to turn CO2 from cement plant into Sustainable Aviation Fuel

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The consortium will source green hydrogen generated exclusively from wind and solar energy from ENERTRAG. To reach carbon neutrality, these emissions must be captured, stored, or repurposed in some way. ENERTRAG’s plants produce reliable electricity and green hydrogen exclusively from wind and sun.

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Stanford GCEP awards $6.6M to 7 projects; focus on combining energy conversion with carbon-neutral fuel production

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million to seven research teams—six from Stanford and one from Carnegie Mellon University—to advance research on technologies for renewable energy conversion to electricity or fuels and for capturing CO 2 emissions and converting CO 2 to fuels. High-efficiency thin-film solar cells.