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Uppsala team develops composite polymer dots for efficient, stable H2 production from water and sunlight

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Researchers at Uppsala University have developed photocatalytic composite polymer nanoparticles (“polymer dots”) that show promising performance and stability for the production of hydrogen from water and sunlight. These polymer dots are designed to be both environmentally friendly and cost-effective. 0c12654.

Polymer 397
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Researchers show coordination polymer glass membranes can produce as much energy as liquid-based counterparts in fuel cells

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Scientists at Kyoto University’s Institute for Integrated Cell-Material Sciences (iCeMS) have developed a new coordination polymer glass membrane for hydrogen fuel cells that works just as well as its liquid counterparts with added strength and flexibility. Credit: Mindy Takamiya/Kyoto University iCeMS. —Ogawa et al.

Polymer 332
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New solid polymer electrolyte outperforms Nafion; novel polymer folding

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Researchers, led by a team from the University of Pennsylvania, have used a polymer-folding mechanism to develop a new and versatile kind of solid polymer electrolyte (SPE) that currently offers proton conductivity faster than Nafion by a factor of 2, the benchmark for fuel cell membranes. They collaborated with Kenneth B.

Polymer 250
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Evonik develops novel anion exchange membrane for electrolytic production of hydrogen; CHANNEL project

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Evonik has now developed a novel anion exchange membrane (AEM), which should contribute to the breakthrough of electrolytic production of hydrogen. The membrane developed by researchers at Creavis and experts from the High Performance Polymers unit in the Membranes innovation growth field is a resistant polymer with excellent conductivity.

Hydrogen 433
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Researchers develop thin-layer artificial biofilm technology for green ethylene production

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Researchers at the University of Turku in Finland have developed a thin-layer artificial biofilm technology for sustainable and long-term ethylene photoproduction. PCC 6803 cells holding ethylene forming enzyme (Efe) from Pseudomonas syringae are entrapped within a natural polymer matrix, thus forming the thin-layer biocatalytic structure.

Green 386
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Grafoid Inc. and Rutgers University to jointly develop and commercialize polymer and non-polymer technology graphene applications

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and Rutgers University AMIPP Advanced Polymer Center signed a memorandum of understanding (MOU) to develop jointly graphene technology applications related to both polymer and non-polymer applications. One of its aims is to set a universal standard for the mass production of graphene for industrial applications.

Polymer 199
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UK awards £28M for 5 demonstration-phase low-carbon hydrogen production projects

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million) to five demonstration phase projects for low-carbon hydrogen production. The project concerns the production of hydrogen at scale from offshore floating wind in deep water locations. The company will also develop further plans for large scale production of electrolyzers. Led by Cranfield University.

Hydrogen 386