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Kellas Midstream enters FEED for its H2NorthEast hydrogen project on Teesside
Kellas Midstream, the Aberdeen-based independent energy infrastructure company, has started front end engineering design (FEED) work on its H2NorthEast hydrogen project in Teesside.
ExploreHyCOgen and FT CANS, innovative technologies to enable sustainable fuel production selected for Repsol and Aramco’s synthetic fuel plant in Bilbao
News
ExploreJohnson Matthey technology selected for one of the largest planned e-methanol plants in Europe
ExploreFuel cell vehicles to boost European competitiveness and the Green Deal
The PGM industry is calling for an accelerated rollout of fuel cell vehicles in Europe to complement existing climate strategy while unlocking greater industrial competitiveness and security of critical raw materials supply.
Explore"Euston, this is emission control": Upgrading buses to make London's air cleaner
News: Retrofit technology enables Johnson Matthey and partners to take a twelve-year-old bus and achieve emissions comparable to a modern bus.
ExploreBiocatalysis
Watch a video explaining what biocatalysis is, read about our continued work and improvements in biocatalysis and discover what you can expect in the future.
ExploreJohn Cockerill, Johnson Matthey and ETFuels Announce Strategic Partnership for 120,000 tonne Texas e-Methanol Project
ETFuels has selected John Cockerill and Johnson Matthey as key strategic partners for its 120,000 tonne per year e-methanol project in Texas.
ExplorePgm Market Report May 2019 out now
News: Our Pgm Market Report for May 2019 is out now, reviewing supply and demand for the platinum group metals.
ExploreAlaDH-6
Alanine dehydrogenase (AlaDH) catalyses the reductive amination of pyruvate to L-alanine.
ExplorePd-118
[1,1-Bis(di tert butylphosphino)ferrocene] dichloropalladium (II) | CAS Number:95408-45-0
ExploreFDH-102
Formate dehydrogenase (FDH) oxidises formate to carbon dioxide while reducing in turn NAD+ to NADH.
ExploreNR-48
Nitroreductase for the reduction of nitroaromatic compounds to their corresponding anilines
ExploreNR-55
Nitroreductase for the reduction of nitroaromatic compounds to their corresponding anilines
ExploreNR-14
Nitroreductase for the reduction of nitroaromatic compounds to their corresponding anilines
ExploreNR-20
Nitroreductase for the reduction of nitroaromatic compounds to their corresponding anilines
ExploreNR-23
Nitroreductase for the reduction of nitroaromatic compounds to their corresponding anilines
ExploreNR-24
Nitroreductase for the reduction of nitroaromatic compounds to their corresponding anilines
ExploreNR-5
Nitroreductase for the reduction of nitroaromatic compounds to their corresponding anilines
ExploreNR-36
Nitroreductase for the reduction of nitroaromatic compounds to their corresponding anilines
ExploreLDH-4
Lactate dehydrogenase (LDH) catalyses the reduction of pyruvate to either (R)- or (S)- lactate, while oxidising in turn NADH to NAD+, which is then regenerated using glucose dehydrogenase (GDH).
ExploreGDH-8
Glucose dehydrogenase (GDH) catalyses the oxidation of D-glucose to D-glucolactone, while reducing in turn NAD+ or NADP+ to NADH and NADPH, respectively.
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