Nature carefully selects specific metal ions for incorporation into the enzymes that catalyse the chemical reactions necessary for life. Hydrogenases, enzymes that activate molecular H-2, exclusively utilize Ni and Fe in [NiFe]-, [FeFe]- and [Fe]-hydrogeanses. However, other transition metals are known to activate or catalyse the production of hydrogen in synthetic systems. Here, we report the development of a biomimetic model complex of [Fe]-hydrogenase that incorporates a Mn, as opposed to a Fe, metal centre. This Mn complex is able to heterolytically cleave H-2 as well as catalyse hydrogenation reactions. The incorporation of the model into an apoenzyme of [Fe]-hydrogenase results in a [Mn]-hydrogenase with an enhanced occupancy-normaliz...
Hydrogenase enzymes efficiently process H-2 and protons at organometallic FeFe, NiFe, or Fe active s...
International audienceHydrogen production through water splitting is one of the most promising solut...
International audienceIn nature, dihydrogen is catalytically produced or split by the [FeFe] and [Ni...
The reconstitution of [Mn]-hydrogenases using a series of Mn-I complexes is described. These complex...
The reconstitution of [Mn]-hydrogenases using a series of MnI complexes is described. These complexe...
[Fe]‐hydrogenase is an efficient biological hydrogenation catalyst. Despite intense research, Fe com...
International audienceCONSPECTUS: Water splitting into oxygen and hydrogen is one of the most attrac...
International audienceThe dinuclear nickel–manganese complex [Ni(xbsms)Mn(CO)3(H2O)]+ (H2xbsms = 1,2...
International audienceOver the last 15 years, a plethora of research has provided major insights int...
Chemically synthesized compounds that are capable of facilitating the reversible splitting of dihydr...
273 p.Thesis (Ph.D.)--University of Illinois at Urbana-Champaign, 2010.Unlike the [FeFe]-hydrogenase...
As humans continue to rely heavily on fossil fuels for our energy sources, many scientists are resea...
[Fe]-Hydrogenase catalyzes the hydrogenation of a biological substrate via the heterolytic splitting...
NiFe hydrogenases are unique metalloenzymes that catalyze H+/H2 interconversion with remarkable effi...
Hydrogenase enzymes efficiently process H-2 and protons at organometallic FeFe, NiFe, or Fe active s...
International audienceHydrogen production through water splitting is one of the most promising solut...
International audienceIn nature, dihydrogen is catalytically produced or split by the [FeFe] and [Ni...
The reconstitution of [Mn]-hydrogenases using a series of Mn-I complexes is described. These complex...
The reconstitution of [Mn]-hydrogenases using a series of MnI complexes is described. These complexe...
[Fe]‐hydrogenase is an efficient biological hydrogenation catalyst. Despite intense research, Fe com...
International audienceCONSPECTUS: Water splitting into oxygen and hydrogen is one of the most attrac...
International audienceThe dinuclear nickel–manganese complex [Ni(xbsms)Mn(CO)3(H2O)]+ (H2xbsms = 1,2...
International audienceOver the last 15 years, a plethora of research has provided major insights int...
Chemically synthesized compounds that are capable of facilitating the reversible splitting of dihydr...
273 p.Thesis (Ph.D.)--University of Illinois at Urbana-Champaign, 2010.Unlike the [FeFe]-hydrogenase...
As humans continue to rely heavily on fossil fuels for our energy sources, many scientists are resea...
[Fe]-Hydrogenase catalyzes the hydrogenation of a biological substrate via the heterolytic splitting...
NiFe hydrogenases are unique metalloenzymes that catalyze H+/H2 interconversion with remarkable effi...
Hydrogenase enzymes efficiently process H-2 and protons at organometallic FeFe, NiFe, or Fe active s...
International audienceHydrogen production through water splitting is one of the most promising solut...
International audienceIn nature, dihydrogen is catalytically produced or split by the [FeFe] and [Ni...