So much for biochemistry. How do we now get to technical use?
The idea is to use such processes, for example, to store regeneratively generated electricity and transport it over long distances. In principle, sun and wind supply more than enough clean energy to meet global demand, but where they are needed, they are not always available in sufficient quantities. That is why at our institute we are looking for ways to efficiently convert energy into forms that can be stored and used. Artificial photosynthesis is one possibility that is being intensively researched by us and many other working groups.
What have you already achieved?
In the meantime, we have a fairly precise idea of how natural photosynthesis works. These findings are important, among other things, to realise an efficient splitting of water into its components oxygen and hydrogen in the laboratory. The necessary catalysts play a key role in this process: In nature, these are the enzymes water oxidase and hydrogenases. Roughly speaking, photosynthesis is still familiar to many from school lessons, but our research is about the finer details.
Do you have an example for us?
Nature uses enzymes for its reactions that contain common and inexpensive metals such as manganese, iron and nickel. For chemical-technical use, however, precious metals such as platinum are almost exclusively used as catalysts today, which work very well, but whose deposits are unfortunately limited. Following nature's example, we are therefore looking for new metal catalysts to make the future large-scale production of hydrogen as efficient as it is environmentally friendly. The goal is therefore the so-called green hydrogen, which not only plays a central role for the energy supply of the future, but also as one of the most important basic materials in industry.
Are there already results?
Catalytic water oxidation and hydrogen production are very intensively worked on research areas worldwide, and considerable successes have been achieved in recent years. However, a perfect catalyst that meets all the requirements in terms of efficiency, stability, scalability, eco-friendliness, material availability and price and has proven itself in practice does not yet exist. So there is still a lot of room for good ideas and developments in this hot field of research.
The entire hydrogen economy is a hot topic at the moment. What chances do you see for it?
We are now very good at generating regenerative electricity, for example with the help of photovoltaics, which today achieve efficiencies of around 25 percent for silicon cells and more than 45 percent for more complex PV cells. Storage remains a problem. Batteries are widely accepted by society, for example in electromobility, but they are not very efficient and also not environmentally friendly. Hydrogen can store many times more energy and its combustion produces only water. It is suitable for large-scale use and forms a very good bridge from the fossil to a sustainable energy era.
Your research in this exciting field is, as you said, gradually running out. Does that mean you will have more time for the GDNÄ in the future?
Yes, and I am looking forward to that. As a member of the Board of Directors, for example, I'm very happy to contribute to the preparations for the 200th anniversary celebration, which is to take place in Leipzig in 2022. Great ideas are being put together there right now. I don't want to give too much away yet, but the lectures and discussions will take place in the attractive congress centre of the trade fair city and the supporting programme partly in the famous Leipzig Zoo. There will be a student and visitor programme and many highly interesting lectures from different disciplines. For the Nobel Prize lecture we have invited Reinhard Genzel, who discovered the gigantic black hole at the heart of our Milky Way.