H2020Individual fellowship2016–2018

VSHER · Mechanistic Understanding of Heterogenised Hydrogen Evolution Catalysts Through Vibrational Spectroelectrochemistry

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2016-04-01 → 2018-03-31
EU contribution
€183,455
Participants
1
Scheme
MSCA-IF-EF-ST

Lines connect the coordinator with its partners.

Results in brief

Mechanistic Understanding of Heterogenised Hydrogen Evolution Catalysts Through Vibrational Spectroelectrochemistry

Anthropological global warming and climate change pose a major threat to the future of our society. As internationally agreed on at the UN Climate Change Conference in Paris in 2015, it is therefore of central importance to significantly reduce net carbon dioxide (CO2) emissions. In this respect, transformation of atmospheric CO2 back into feedstock chemicals using chemical catalysis has emerged as a promising approach towards a carbon-neutral economy. To advance CO2 conversion catalysis towards full-scale applications, it requires highly effective catalysts that allow for driving the reaction with minimal energy losses and precisely controllable product selectivity. Up to now our understanding of how to rationally tune catalytic selectivity and activity remains poor hampering any advancement of the technology. Studying the catalytic mechanism of CO2 conversion catalyzed by small molecular complexes has become a favorable strategy towards understanding fundamental principle of the catalysis. Molecular metal complexes exhibit a simple and defined chemical framework for the catalytic reaction that also allows for tailored fine tuning of the ligand sphere to modulate the catalysis. Thus, they exhibit an ideal system to study structure-activity relationships. Understanding these is a major prerequisite for rational improvement of any CO2 catalytic conversion systems towards application. In this project, we develop innovative spectroscopic approaches that allow for in situ investigations of the mechanism of molecular CO2 reduction catalysis. Specifically, powerful Fourier-transform infrared spectroscopy in the attenuated reflection mode coupled to electrochemistry is employed to investigate the interfacial catalytic reactions of manganese and rhenium transition metal complexes at a molecular level. Upon developing tailored immobilization strategies, we selectively bind the catalysts onto conductive electrode surfaces that enable controlled triggering of redox and catalytic reactions by applying potentials. Our studies aim at providing a detailed picture of the catalytic mechanism of these complexes on surfaces deriving general guidelines for rational enhancement of activity and selectivity for CO2 reduction catalysis.

Data: CORDIS, © European Union

Project objective

Hydrogen (H2) will play a central role in the future global energy economy. It is therefore of utmost importance to develop economic routes for the production of H2 to make it more attractive as energy carrier medium in the future. Particularly, Co and Ni based compounds have gained attention for molecular H2 catalysis lately. Co glyoxime and pentapyridine coordinative complexes as well as Ni phosphine compounds are promising candidates exhibiting high catalytic activity in both electro- and light driven H2 catalysis in water. Nevertheless, for technological application the catalysts have to be immobilized on electrode surfaces. The adsorption strongly alters the catalytic reactions, which is still not clearly understood. To investigate the adsorbed catalysts, advanced spectroscopic methods are required that are able to provide sensitive information on the catalytic reaction at a molecular level. The aim of this proposed research is to investigate the heterogeneous catalytic reaction mechanism of Co and Ni mediated catalysis using an innovative combination of potential controlled confocal resonance Raman and ATR FT infrared absorption spectroscopy assisted by electrocatalytic methods and DFT calculations. For this, the three mentioned types of catalysts will be adsorbed on metal oxide surfaces and their catalytic reactions spectroelectrochemically and electrochemically investigated. Special emphasis is led on the role of heterogeneous electron and proton transfer steps on the overall heterogeneous catalytic activity compared to the homogeneous case. Through variation of the electrode material, the modulating material/catalyst interaction is aimed to be investigated in detail. In the outcome, the results will afford a comprehensive picture of the mechanism of metal catalysed HER.

Original text from CORDIS.

Participants

  • THE CHANCELLOR MASTERS AND SCHOLARS OF THE UNIVERSITY OF CAMBRIDGE · CAMBRIDGECoordinatorUnited Kingdom

Links

Data: CORDIS, © European Union