Direct electron transfer between enzymes and electrodes is now commonly achieved, but obtaining protein films that are very stable may be challenging. This is particularly crucial in the case of hydrogenases, the enzymes that catalyze the biological conversion between dihydrogen and protons, because the instability of the hydrogenase films may prevent the use of these enzymes as electrocatalysts of H-2 oxidation and production in biofuel cells and photoelectrochemical cells. Here we show that two different FeFe hydrogenases (from Chamydomonas reinhardtii and Clostridium acetobutylicum) can be covalently attached to functionalized pyrolytic graphite electrodes using peptidic coupling. In both cases, a surface patch of lysine residues makes i...
Hydrogenases provide an inspiration for future energy technologies. The active sites of these microb...
International audienceHnd, an FeFe hydrogenase from Desulfovibrio fructosovorans, is a tetrameric en...
Iron–iron hydrogenase are fascinating metallo‐enzymes able to reversibly perform interconversion bet...
Direct electron transfer between enzymes and electrodes is now commonly achieved, but obtaining prot...
Protein film electrochemistry (PFE) is providing cutting-edge insight into the chemical principles u...
Protein film electrochemistry (PFE) is providing cutting-edge insight into the chemical principles u...
A variety of dynamic electrochemical techniques are being applied in order to learn about the proper...
The use of H2 as an energy carrier has in recent years been identified as a promising future soluti...
Electrochemical studies of hydrogenases, the biological catalysts of H2 oxidation and production, ha...
Protein film electrochemistry (PFE) has been used to study the assembly of the complex 6Fe active si...
Hydrogenase enzymes are being used in enzymatic fuel cells immobilized on a graphite or carbon elect...
Hydrogenases catalyse the interconversion of H2 and H+. Protein Film Electrochemistry (PFE), a techn...
A major obstacle for future biohydrogen production is the oxygen sensitivity of [FeFe]-hydrogenases,...
A number of redox enzymes function as excellent electrocatalysts when attached to electrodes or cond...
Hydrogenases catalyse the interconversion of H2 and H+. Protein Film Electrochemistry (PFE), a techn...
Hydrogenases provide an inspiration for future energy technologies. The active sites of these microb...
International audienceHnd, an FeFe hydrogenase from Desulfovibrio fructosovorans, is a tetrameric en...
Iron–iron hydrogenase are fascinating metallo‐enzymes able to reversibly perform interconversion bet...
Direct electron transfer between enzymes and electrodes is now commonly achieved, but obtaining prot...
Protein film electrochemistry (PFE) is providing cutting-edge insight into the chemical principles u...
Protein film electrochemistry (PFE) is providing cutting-edge insight into the chemical principles u...
A variety of dynamic electrochemical techniques are being applied in order to learn about the proper...
The use of H2 as an energy carrier has in recent years been identified as a promising future soluti...
Electrochemical studies of hydrogenases, the biological catalysts of H2 oxidation and production, ha...
Protein film electrochemistry (PFE) has been used to study the assembly of the complex 6Fe active si...
Hydrogenase enzymes are being used in enzymatic fuel cells immobilized on a graphite or carbon elect...
Hydrogenases catalyse the interconversion of H2 and H+. Protein Film Electrochemistry (PFE), a techn...
A major obstacle for future biohydrogen production is the oxygen sensitivity of [FeFe]-hydrogenases,...
A number of redox enzymes function as excellent electrocatalysts when attached to electrodes or cond...
Hydrogenases catalyse the interconversion of H2 and H+. Protein Film Electrochemistry (PFE), a techn...
Hydrogenases provide an inspiration for future energy technologies. The active sites of these microb...
International audienceHnd, an FeFe hydrogenase from Desulfovibrio fructosovorans, is a tetrameric en...
Iron–iron hydrogenase are fascinating metallo‐enzymes able to reversibly perform interconversion bet...