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#alkanes — Public Fediverse posts

Live and recent posts from across the Fediverse tagged #alkanes, aggregated by home.social.

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  1. I found a way to do it nicely. So, this is apparently called 4,4-dimethyl-5-(1-propyl)-decane. Is the 1 really necessary? Was going to ask the professor this, but then we had a quiz, and I forgot. 🥴

    #Chemistry #OrganicChemistry #Alkanes

  2. I found a way to do it nicely. So, this is apparently called 4,4-dimethyl-5-(1-propyl)-decane. Is the 1 really necessary? Was going to ask the professor this, but then we had a quiz, and I forgot. 🥴

    #Chemistry #OrganicChemistry #Alkanes

  3. Photocatalytic Alkanes Functionalization Promoted by CeCl3

    Regioselective transformation gives alkenylation or alkynylation products in good to high yields

    chemistryviews.org/photocataly

  4. Photocatalytic Alkanes Functionalization Promoted by CeCl3

    Regioselective transformation gives alkenylation or alkynylation products in good to high yields

    chemistryviews.org/photocataly

    #orgchem #alkanes #chemist6ry #chemistryviews #chemviews

  5. Photocatalytic Alkanes Functionalization Promoted by CeCl3

    Regioselective transformation gives alkenylation or alkynylation products in good to high yields

    chemistryviews.org/photocataly

    #orgchem #alkanes #chemist6ry #chemistryviews #chemviews

  6. Photocatalytic Alkanes Functionalization Promoted by CeCl3

    Regioselective transformation gives alkenylation or alkynylation products in good to high yields

    chemistryviews.org/photocataly

    #orgchem #alkanes #chemist6ry #chemistryviews #chemviews

  7. Breathing deep: A metabolic secret of ethane-consuming #archaea unraveled phys.org/news/2024-10-deep-met

    Ethane-oxidising archaea couple CO2 generation to F420 reduction nature.com/articles/s41467-024

    "Seeps on the deep seafloor naturally emit #alkanes, which are pollutants that are potentially dangerous to life. Fortunately, the sediments around the seeps host #microbes that act as a biological filter: They consume most of the alkanes before their release into the oceans and our atmosphere."

  8. Breathing deep: A metabolic secret of ethane-consuming #archaea unraveled phys.org/news/2024-10-deep-met

    Ethane-oxidising archaea couple CO2 generation to F420 reduction nature.com/articles/s41467-024

    "Seeps on the deep seafloor naturally emit #alkanes, which are pollutants that are potentially dangerous to life. Fortunately, the sediments around the seeps host #microbes that act as a biological filter: They consume most of the alkanes before their release into the oceans and our atmosphere."

  9. Breathing deep: A metabolic secret of ethane-consuming #archaea unraveled phys.org/news/2024-10-deep-met

    Ethane-oxidising archaea couple CO2 generation to F420 reduction nature.com/articles/s41467-024

    "Seeps on the deep seafloor naturally emit #alkanes, which are pollutants that are potentially dangerous to life. Fortunately, the sediments around the seeps host #microbes that act as a biological filter: They consume most of the alkanes before their release into the oceans and our atmosphere."

  10. Breathing deep: A metabolic secret of ethane-consuming #archaea unraveled phys.org/news/2024-10-deep-met

    Ethane-oxidising archaea couple CO2 generation to F420 reduction nature.com/articles/s41467-024

    "Seeps on the deep seafloor naturally emit #alkanes, which are pollutants that are potentially dangerous to life. Fortunately, the sediments around the seeps host #microbes that act as a biological filter: They consume most of the alkanes before their release into the oceans and our atmosphere."

  11. We know about (and have been using) oil-eating microbes for a while now. But figuring out how exactly this biochemical breakdown works is key to expanding usage into more and broader options.

    Scientists at the Brookhaven National Lab have identified the structure of the enzymatic reaction that breaks the carbon-hydrogen bond of alkanes found as major constituents in petroleum products.

    #Biochemistry #Oil #Alkanes #Enzymes #Bioengineering #Science #SciComm

    nature.com/articles/s41594-023

  12. We know about (and have been using) oil-eating microbes for a while now. But figuring out how exactly this biochemical breakdown works is key to expanding usage into more and broader options.

    Scientists at the Brookhaven National Lab have identified the structure of the enzymatic reaction that breaks the carbon-hydrogen bond of alkanes found as major constituents in petroleum products.

    #Biochemistry #Oil #Alkanes #Enzymes #Bioengineering #Science #SciComm

    nature.com/articles/s41594-023

  13. We know about (and have been using) oil-eating microbes for a while now. But figuring out how exactly this biochemical breakdown works is key to expanding usage into more and broader options.

    Scientists at the Brookhaven National Lab have identified the structure of the enzymatic reaction that breaks the carbon-hydrogen bond of alkanes found as major constituents in petroleum products.

    #Biochemistry #Oil #Alkanes #Enzymes #Bioengineering #Science #SciComm

    nature.com/articles/s41594-023

  14. We know about (and have been using) oil-eating microbes for a while now. But figuring out how exactly this biochemical breakdown works is key to expanding usage into more and broader options.

    Scientists at the Brookhaven National Lab have identified the structure of the enzymatic reaction that breaks the carbon-hydrogen bond of alkanes found as major constituents in petroleum products.

    #Biochemistry #Oil #Alkanes #Enzymes #Bioengineering #Science #SciComm

    nature.com/articles/s41594-023