The reduction of nitrogen (N_2) to ammonia (NH_3) is a requisite transformation for life. Although it is widely appreciated that the iron-rich cofactors of nitrogenase enzymes facilitate this transformation, how they do so remains poorly understood. A central element of debate has been the exact site or sites of N_2 coordination and reduction. In synthetic inorganic chemistry, an early emphasis was placed on molybdenum because it was thought to be an essential element of nitrogenases and because it had been established that well-defined molybdenum model complexes could mediate the stoichiometric conversion of N_2 to NH_3 (ref. 9). This chemical transformation can be performed in a catalytic fashion by two well-defined molecular systems that...
Nitrogen redn. to NH_3 is a requisite transformation for life. While it is widely appreciated that t...
The activation of Fe-coordinated N2 via the formal addition of hydrogen atom equivalents is explored...
Nitrogen redn. to NH_3 is a requisite transformation for life and new technologies for NH synthesis ...
The reduction of nitrogen (N_2) to ammonia (NH_3) is a requisite transformation for life. Although i...
The reduction of nitrogen (N_2) to ammonia (NH_3) is a requisite transformation for life. Although i...
While recent spectroscopic studies have established the presence of an interstitial carbon atom at t...
The mechanisms of the few known molecular nitrogen-fixing systems, including nitrogenase enzymes, ar...
The mechanisms of the few known molecular nitrogen-fixing systems, including nitrogenase enzymes, ar...
Threefold symmetric Fe phosphine complexes have been used to model the structural and functional asp...
Biological N_2 fixation to NH_3 may proceed at one or more Fe sites in the active-site cofactors of ...
Threefold symmetric Fe phosphine complexes have been used to model the structural and functional asp...
Biological N_2 fixation to NH_3 may proceed at one or more Fe sites in the active-site cofactors of ...
Nitrogen fixation, specifically the conversion of molecular nitrogen into ammonia, is a fundamental ...
Terminal iron nitrides (Fe≡N) have been proposed as intermediates of (bio)catalytic nitrogen fixatio...
Substrate selectivity in reductive multi-electron/proton catalysis with small molecules such as N_2,...
Nitrogen redn. to NH_3 is a requisite transformation for life. While it is widely appreciated that t...
The activation of Fe-coordinated N2 via the formal addition of hydrogen atom equivalents is explored...
Nitrogen redn. to NH_3 is a requisite transformation for life and new technologies for NH synthesis ...
The reduction of nitrogen (N_2) to ammonia (NH_3) is a requisite transformation for life. Although i...
The reduction of nitrogen (N_2) to ammonia (NH_3) is a requisite transformation for life. Although i...
While recent spectroscopic studies have established the presence of an interstitial carbon atom at t...
The mechanisms of the few known molecular nitrogen-fixing systems, including nitrogenase enzymes, ar...
The mechanisms of the few known molecular nitrogen-fixing systems, including nitrogenase enzymes, ar...
Threefold symmetric Fe phosphine complexes have been used to model the structural and functional asp...
Biological N_2 fixation to NH_3 may proceed at one or more Fe sites in the active-site cofactors of ...
Threefold symmetric Fe phosphine complexes have been used to model the structural and functional asp...
Biological N_2 fixation to NH_3 may proceed at one or more Fe sites in the active-site cofactors of ...
Nitrogen fixation, specifically the conversion of molecular nitrogen into ammonia, is a fundamental ...
Terminal iron nitrides (Fe≡N) have been proposed as intermediates of (bio)catalytic nitrogen fixatio...
Substrate selectivity in reductive multi-electron/proton catalysis with small molecules such as N_2,...
Nitrogen redn. to NH_3 is a requisite transformation for life. While it is widely appreciated that t...
The activation of Fe-coordinated N2 via the formal addition of hydrogen atom equivalents is explored...
Nitrogen redn. to NH_3 is a requisite transformation for life and new technologies for NH synthesis ...