Solid Oxide Electrolysis Cells (SOECs) have proven to be a highly efficient key technology for producing valuable chemicals and fuels from renewably generated electricity at temperatures between 600 °C and 900 °C, thus providing a carbon-neutral method for energy storage. The successful implementation of this technology on an industrial level in particular requires the long-term stability of all system components with a concurrent overall degradation rate of a maximum of 0.75 %∙kh-1 or even better 0.5 % k∙h-1, corresponding to a performance loss of 20 % over approx. five years under constant operating parameters1. However, the materials currently used for SOEC systems have been developed and optimized in recent decades for fuel cell operati...
Solid oxide fuel cells (SOFCs) have the promise to improve energy efficiency and to provide society ...
Solid oxide fuel cells (SOFCs) are recognized as an alternative for power generation applications du...
Production of H₂ by electrochemical conversion of H₂O, through electrolysis can be achieved without ...
Solid oxide electrochemical systems, such as solid oxide fuel cells (SOFC), solid oxide electrolysis...
Solid oxide fuel and electrolyzer cells (SOCs) are one technology to enable a carbon-free future wit...
Renewable energy sources such as solar and wind power are important for the future energy supply cha...
Reliable and economical energy storage technologies are urgently required to ensure sustainable ener...
High temperature electrolysis has a high potential for the efficient production of hydrogen or synga...
Solid oxide electrolysis cells (SOECs) are high temperature electrochemical devices with the potenti...
In a context of climate change, the need for more carbon efficient technologies for energy storage a...
Over the past one decade, several cell component materials and their combinations have been attempte...
The purpose of this research is to improve the properties of the current state-of-the-art materials ...
High-temperature solid oxide electrolysis cell (HT-SOEC) stacks, within the concept of Power to X (X...
Metal-supported solid oxide electrolysis cells (MS-SOECs) with symmetric cell architecture were deve...
The materials selection and materials development for solid oxide fuel cells (SOFCs) is driven by th...
Solid oxide fuel cells (SOFCs) have the promise to improve energy efficiency and to provide society ...
Solid oxide fuel cells (SOFCs) are recognized as an alternative for power generation applications du...
Production of H₂ by electrochemical conversion of H₂O, through electrolysis can be achieved without ...
Solid oxide electrochemical systems, such as solid oxide fuel cells (SOFC), solid oxide electrolysis...
Solid oxide fuel and electrolyzer cells (SOCs) are one technology to enable a carbon-free future wit...
Renewable energy sources such as solar and wind power are important for the future energy supply cha...
Reliable and economical energy storage technologies are urgently required to ensure sustainable ener...
High temperature electrolysis has a high potential for the efficient production of hydrogen or synga...
Solid oxide electrolysis cells (SOECs) are high temperature electrochemical devices with the potenti...
In a context of climate change, the need for more carbon efficient technologies for energy storage a...
Over the past one decade, several cell component materials and their combinations have been attempte...
The purpose of this research is to improve the properties of the current state-of-the-art materials ...
High-temperature solid oxide electrolysis cell (HT-SOEC) stacks, within the concept of Power to X (X...
Metal-supported solid oxide electrolysis cells (MS-SOECs) with symmetric cell architecture were deve...
The materials selection and materials development for solid oxide fuel cells (SOFCs) is driven by th...
Solid oxide fuel cells (SOFCs) have the promise to improve energy efficiency and to provide society ...
Solid oxide fuel cells (SOFCs) are recognized as an alternative for power generation applications du...
Production of H₂ by electrochemical conversion of H₂O, through electrolysis can be achieved without ...