International audienceEnergy conversion schemes involving dihydrogen hold great potential for meeting sustainable energy needs, but widespread implementation cannot proceed without solutions that mitigate the cost of rare metal catalysts and the O 2 instability of biological and bioinspired replacements. Recently, thick films (>100 μm) of redox polymers were shown to prevent O 2 catalyst damage but also resulted in unnecessary catalyst load and mass transport limitations. Here we apply novel homogeneous thin films (down to 3 μm) that provide protection from O 2 while achieving highly efficient catalyst utilization. Our empirical data are explained by modeling, demonstrating that resistance to O 2 inactivation can be obtained for nonlimiting...
The immobilization, protection, and electrical wiring of sensitive catalysts by specifically designe...
Protein film electrochemistry (PFE) is providing cutting-edge insight into the chemical principles u...
The derivation of successful fuel cell technologies requires the development of more effective, chea...
International audienceEnergy conversion schemes involving dihydrogen hold great potential for meetin...
International audience(Abstract Image)The use of synthetic inorganic complexes as supported catalyst...
The use of synthetic inorganic complexes as supported catalysts is a key route in energy production ...
International audienceRedox catalysts, including hydrogenases, can be embedded into lms made of redo...
Efficient electrocatalytic energy conversion requires devices to function reversibly, that is, to de...
Hydrogenases catalyse the reversible oxidation and production of H₂. They have been the subject of i...
This thesis addresses the development of novel stable layered thin films on electrodes containing mo...
In dieser Arbeit werden polymere Matrizen entworfen, um Hydrogenasen und bioinspirierte Katalysatore...
Recent packaging breakthroughs have demonstrated that placing a small amount of highly efficient oxy...
Protein film electrochemistry (PFE) is providing cutting-edge insight into the chemical principles u...
Hydrogenases with Ni- and/or Fe-based active sites are highly active hydrogen oxidation catalysts wi...
The development of stable, cost‐efficient and active materials is one of the main challenges in cata...
The immobilization, protection, and electrical wiring of sensitive catalysts by specifically designe...
Protein film electrochemistry (PFE) is providing cutting-edge insight into the chemical principles u...
The derivation of successful fuel cell technologies requires the development of more effective, chea...
International audienceEnergy conversion schemes involving dihydrogen hold great potential for meetin...
International audience(Abstract Image)The use of synthetic inorganic complexes as supported catalyst...
The use of synthetic inorganic complexes as supported catalysts is a key route in energy production ...
International audienceRedox catalysts, including hydrogenases, can be embedded into lms made of redo...
Efficient electrocatalytic energy conversion requires devices to function reversibly, that is, to de...
Hydrogenases catalyse the reversible oxidation and production of H₂. They have been the subject of i...
This thesis addresses the development of novel stable layered thin films on electrodes containing mo...
In dieser Arbeit werden polymere Matrizen entworfen, um Hydrogenasen und bioinspirierte Katalysatore...
Recent packaging breakthroughs have demonstrated that placing a small amount of highly efficient oxy...
Protein film electrochemistry (PFE) is providing cutting-edge insight into the chemical principles u...
Hydrogenases with Ni- and/or Fe-based active sites are highly active hydrogen oxidation catalysts wi...
The development of stable, cost‐efficient and active materials is one of the main challenges in cata...
The immobilization, protection, and electrical wiring of sensitive catalysts by specifically designe...
Protein film electrochemistry (PFE) is providing cutting-edge insight into the chemical principles u...
The derivation of successful fuel cell technologies requires the development of more effective, chea...