The reactivity of [Fe2(dcbdt)(CO)6] (1) confined in a UiO-66(Zr) metal–organic framework towards CO ligand substitutions with phosphines of different sizes was investigated. The reaction with smaller phosphines (PX3, X = Me, Et) is more selective compared to analogous reactions in homogenous solution phase, and two CO ligands at up to 80% of all [FeFe] sites in UiO-66–1 are replaced. The produced [Fe2(dcbdt)(CO)4(PX3)2] complexes in the UiO-66 matrix behave like typical [FeFe] hydrogenase active site model complexes, are reduced at more cathodic potentials than their hexacarbonyl analogues, and form bridging hydrides under acidic conditions
[FeFe]-hydrogenases are efficient metalloenzymes that catalyze the oxidation and evolution of molecu...
A [FeFe]-hydrogenase model (1) containing a chelating diphosphine ligand with a pendant amine was re...
The hydrogenases are metalloenzymes that act to catalytically interconvert dihydrogen with protons a...
Biomimetic catalysis is an important research field, as a better understanding of nature´s powerful ...
A novel [FeFe]-hydrogenase model complex containing phosphine oxide in the dithiolato ligand, namely...
A new series of homodinuclear iron complexes as models of the [FeFe]-hydrogenase active site was pre...
A new series of homodinuclear iron complexes as models of the [FeFe]-hydrogenase active site was pre...
As humans continue to rely heavily on fossil fuels for our energy sources, many scientists are resea...
[FeFe]-Hydrogenases (H2ases) are metalloenzymes that can catalyze the reversible reduction of proton...
International audienceIn nature, dihydrogen is catalytically produced or split by the [FeFe] and [Ni...
154 p.Thesis (Ph.D.)--University of Illinois at Urbana-Champaign, 2009.While previous hydride-contai...
[FeFe]-hydrogenases feature a unique active site in which the primary catalytic unit is directly coo...
273 p.Thesis (Ph.D.)--University of Illinois at Urbana-Champaign, 2010.Unlike the [FeFe]-hydrogenase...
A molecular proton reduction catalyst [FeFe](dcbdt)(CO)<sub>6</sub> (<b>1</b>, dcbdt = 1,4-dicarbo...
Iron–iron hydrogenase are fascinating metallo‐enzymes able to reversibly perform interconversion bet...
[FeFe]-hydrogenases are efficient metalloenzymes that catalyze the oxidation and evolution of molecu...
A [FeFe]-hydrogenase model (1) containing a chelating diphosphine ligand with a pendant amine was re...
The hydrogenases are metalloenzymes that act to catalytically interconvert dihydrogen with protons a...
Biomimetic catalysis is an important research field, as a better understanding of nature´s powerful ...
A novel [FeFe]-hydrogenase model complex containing phosphine oxide in the dithiolato ligand, namely...
A new series of homodinuclear iron complexes as models of the [FeFe]-hydrogenase active site was pre...
A new series of homodinuclear iron complexes as models of the [FeFe]-hydrogenase active site was pre...
As humans continue to rely heavily on fossil fuels for our energy sources, many scientists are resea...
[FeFe]-Hydrogenases (H2ases) are metalloenzymes that can catalyze the reversible reduction of proton...
International audienceIn nature, dihydrogen is catalytically produced or split by the [FeFe] and [Ni...
154 p.Thesis (Ph.D.)--University of Illinois at Urbana-Champaign, 2009.While previous hydride-contai...
[FeFe]-hydrogenases feature a unique active site in which the primary catalytic unit is directly coo...
273 p.Thesis (Ph.D.)--University of Illinois at Urbana-Champaign, 2010.Unlike the [FeFe]-hydrogenase...
A molecular proton reduction catalyst [FeFe](dcbdt)(CO)<sub>6</sub> (<b>1</b>, dcbdt = 1,4-dicarbo...
Iron–iron hydrogenase are fascinating metallo‐enzymes able to reversibly perform interconversion bet...
[FeFe]-hydrogenases are efficient metalloenzymes that catalyze the oxidation and evolution of molecu...
A [FeFe]-hydrogenase model (1) containing a chelating diphosphine ligand with a pendant amine was re...
The hydrogenases are metalloenzymes that act to catalytically interconvert dihydrogen with protons a...