Välj din region

Välj den region som bäst passar din plats eller dina preferenser.

Välj ditt webbplatsspråk

Denna inställning styr språket för användargränssnittet, inklusive knappar, menyer och all text på webbplatsen. Välj ditt föredragna språk för bästa surfupplevelse.

Välj språk för jobbannonser

Välj de språk för jobbannonser du vill se. Denna inställning avgör vilka jobbannonser som visas för dig.

Max Planck Institute for Chemical Energy Conversion (MPI-CEC)

Max Planck Institute for Chemical Energy Conversion (MPI-CEC)

Besök webbplats

Om arbetsgivaren

The MPI for Chemical Energy Conversion sees it as its task to investigate the fundamental chemical processes in energy transformation and thus to contribute to the development of new and efficient catalysts. Our approach to this problem is based on a profound understanding of the underlying chemical reactions. Only when we know in detail how the reaction mechanism looks – and above all how the catalyst is involved in it – we can develop improved and sustainable catalysts on a rational basis. For as Max Planck once said: "Insight must precede application."

Multidisciplinarity is a pre-condition for this goal. At the MPI CEC the fields of heterogeneous catalysis, homogeneous catalysis and biophysical chemistry are being explored in combination using state-of-the art experimental and theoretical analysis methods. We are convinced that this combination is the key to understanding and ultimately to controlling fundamental chemical processes.

Challenges for the research field of chemical energy conversion

Whether electrically powered cars, hydrogen storage or fuel cells: The challenges in the field of chemical energy conversion are manifold. The following list provides a short overview of some of the chemical reactions involved which need to be explored in greater depth.

(1) Transforming light into electrical energy

Primary energy is light energy. This energy must be gathered and converted into electrical energy. Significant advancements in the area of photovoltaic have already been achieved, but further progress is necessary.

(2) Hydrogen for energy storage

Since electrical energy cannot be stored and transported in a satisfactory way, it is necessary to store it in the form of chemical bonds. The production of hydrogen from protons and electrons plays a central role here. We are convinced that this hydrogen, which is primarily produced photochemically, must play a key role in future energy management.

(3) Storage materials for hydrogen

The photochemically produced hydrogen can be stored. This is known to be a difficult venture, since the hydrogen molecule is present in the form of a very small, volatile gas, which does not allow itself to be easily stored. The development of suitable storage materials is an important research venture.

(4) Catalytic water splitting

The electrons required for hydrogen production are obtained from oxidation processes. Ideally, the electrons stem from oxidation of water. Oxygen, electrons and protons are produced in the reaction. Although the electrochemical splitting of water has indeed been known for a long time, it is however too inefficient for use on a large technical scale. Catalytic systems for the oxidation of water are at the focus of modern energy research.

(5) Further development of fuel cells

The energy stored in the photochemically produced hydrogen can be made usable again in a fuel cell. The development of more efficient fuel cells is a further important research field.

(6) Small molecules for hydrogen storage

Alternatively, the photochemically generated hydrogen can be converted directly together with other molecules into energy-storage substances, whereby a particularly positive aspect is the activation of carbon dioxide in order to arrive at organic acids or alcohols. Methanol (CH3OH), for example, is thus an attractive energy carrier since it exists in liquid form and displays a high energy density. Another option is to convert atmospheric nitrogen into ammonia (NH3). In both cases suitable catalytic systems are necessary. Both offer the advantage that existing pipelines and infrastructures can be used for their transport.

Arbetsgivarplats

Liknande arbetsgivare

Intressanta artiklar

Why KTH Is the Ideal Place to Shape the Future Through Your Work
Why KTH Is the Ideal Place to Shape the Future Through Your Work KTH Royal Institute of Technology 5 min läsning
Bringing Society’s Voice into Science
Bringing Society’s Voice into Science University of Oulu 5 min läsning
Bringing Artificial Intelligence Into the Real World
Bringing Artificial Intelligence Into the Real World Mohamed bin Zayed University of Artificial Intelligence (MBZUAI) 4 min läsning
Connecting the Dots With Life Course Epidemiology
Connecting the Dots With Life Course Epidemiology University of Oulu 4 min läsning
Fler stories

Relaterade jobb

Teaching Fellow in Engineering Geology
Teaching Fellow in Engineering Geology Chalmers för 3 dagar sedan
PhD Assistant - Activity rate: 75% - 100%
PhD Assistant - Activity rate: 75% - 100% University of Neuchâtel för 20 timmar sedan
Wet Process Development Coordinator
Wet Process Development Coordinator imec för 1 månad sedan
PhD position in IC Design group
PhD position in IC Design group University of Twente för 3 år sedan
PhD: High-Harmonic Generation and spectroscopy of Liquids and Few-layer solids
PhD: High-Harmonic Generation and spectroscopy of Liquids and Few-layer solids Advanced Research Center for Nanolithography ARCNL för 3 månader sedan
Professorship (W 2) Port-Hamiltonian Systems
Professorship (W 2) Port-Hamiltonian Systems Bergische Universität Wuppertal (BUW) för 3 veckor sedan
Open PhD position in computational chemistry 80 %
Open PhD position in computational chemistry 80 % University of Zurich för 1 månad sedan
PostDoc in Data Anonymization - Computer/Information Systems
PostDoc in Data Anonymization - Computer/Information Systems University of Luxembourg för 11 månader sedan
Fler jobb