Hydrogenases catalyse the interconversion of H2 and H+. Protein Film Electrochemistry (PFE), a technique in which a redox enzyme is adsorbed directly onto an electrode, enables a detailed description of the catalytic function of these metalloenzymes to be obtained. Unlike small-molecule electrocatalysts, the hydrogenase active site is surrounded by a protein structure ensuring that it is relatively unperturbed by the electrode surface. In this thesis, PFE is used alongside mathematical modelling to explain differences between [NiFe]- and [FeFe]-hydrogenases, highlighting some important considerations for efficient, reversible electrocatalysis. This thesis probes the unusual reaction between [NiFe]-hydrogenases and cyanide. Through a detailed ...
Hydrogenases are of great interest because they utilise abundant and inexpensive metals, Fe or Ni-Fe...
The use of H2 as an energy carrier has in recent years been identified as a promising future solutio...
This thesis investigates the catalytic mechanism of NiFe hydrogenases. The specific enzyme studied ...
Hydrogenases catalyse the interconversion of H2 and H+. Protein Film Electrochemistry (PFE), a techn...
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 extraordinary ability of Fe- and Ni-containing enzymes to catalyze rapid and efficient H(+)/H(2)...
Hydrogenases catalyse the reversible oxidation and production of H₂. They have been the subject of i...
Achieving a unified understanding of the mechanism of a multicenter redox enzyme such as [NiFe] hydr...
Hydrogenases are enzymes of great biotechnological relevance because they catalyse the interconversi...
Cyanide reacts rapidly with [NiFe]-hydrogenases (hydrogenase-1 and hydrogenase-2 from Escherichia co...
Hydrogenases catalyse the interconversion of molecular hydrogen with protons and electrons. Thus, th...
Hydrogenases are the enzymatic biocatalysts that catalyze the reversible interconversion of hydrogen...
Cyanide reacts rapidly with [NiFe]-hydrogenases (hydrogenase-1 and hydrogenase-2 from Escherichia co...
Hydrogenases are of great interest because they utilise abundant and inexpensive metals, Fe or Ni-Fe...
The use of H2 as an energy carrier has in recent years been identified as a promising future solutio...
This thesis investigates the catalytic mechanism of NiFe hydrogenases. The specific enzyme studied ...
Hydrogenases catalyse the interconversion of H2 and H+. Protein Film Electrochemistry (PFE), a techn...
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 extraordinary ability of Fe- and Ni-containing enzymes to catalyze rapid and efficient H(+)/H(2)...
Hydrogenases catalyse the reversible oxidation and production of H₂. They have been the subject of i...
Achieving a unified understanding of the mechanism of a multicenter redox enzyme such as [NiFe] hydr...
Hydrogenases are enzymes of great biotechnological relevance because they catalyse the interconversi...
Cyanide reacts rapidly with [NiFe]-hydrogenases (hydrogenase-1 and hydrogenase-2 from Escherichia co...
Hydrogenases catalyse the interconversion of molecular hydrogen with protons and electrons. Thus, th...
Hydrogenases are the enzymatic biocatalysts that catalyze the reversible interconversion of hydrogen...
Cyanide reacts rapidly with [NiFe]-hydrogenases (hydrogenase-1 and hydrogenase-2 from Escherichia co...
Hydrogenases are of great interest because they utilise abundant and inexpensive metals, Fe or Ni-Fe...
The use of H2 as an energy carrier has in recent years been identified as a promising future solutio...
This thesis investigates the catalytic mechanism of NiFe hydrogenases. The specific enzyme studied ...