During the starting phase of TRITIME, the team has given several talks and published a paper in Scripta Materialia. These includes:
Talks:
- "Probing hydrogen with high spatial resolution: a new correlative deformation/hydrogen sensing technique for hydrogen embrittlement study", presented by Maria Vrellou, Xufei Fang, Hans-Christian Schneider, Alexander Welle, Astrid Pundt, Christoph Kirchlechner, DPG-Conference, March 2024
- "Measurement of Tritium with a novel detector system", presented by Joris Müller, Xufei Fang, Christoph Kirchlechner, DPG-Conference, March 2024
- "Probing hydrogen with high spatial resolution: a new correlative deformation/hydrogen sensing technique for hydrogen embrittlement studies", presented by Joris Müller, Maria Vrellou, Rolf Rolli, Hans-Christian Schneider, Astrid Pundt, Xufei Fang, Christoph Kirchlechner, DGM FA “Wasserstoffeffekte in Materialien”
Besides, for the first time, a drastic softening of Pd nanoparticles after hydrogen cycling caused by hydrogen induced dislocations was observed. This softening effect was correlated with the high density of glissile dislocations observed in the H-cycled particles. This work demonstrates that the nanomechanical behaviour of hydride-forming metals such as Pd can be manipulated by hydrogen cycling. This study also has important indications on nanoparticle catalytic efficiencies considering the pivotal role played by Pd as catalysts for hydrogenolysis and for hydrogen economy. Reference: Jonathan Zimmerman, Maria Vrellou, Stefan Wagner, Astrid Pundt, Christoph Kirchlechner, Eugen Rabkin, Drastic softening of Pd nanoparticles induced by hydrogen cycling, Scripta Materialia, 253, 116304, 2024
Finally as part of the material selection process we tackled a fundamental question regarding hydrogen-dislocation interactions in perovskite oxides, which is gaining increasing research interest because of their potential in boosting the availability of proton-conducting electrolytes and mixed proton–electron conductors in fuel cells and electrolyzers (predominantly made of oxides). In addition, proton mediation of electronic properties has also inspired interest for electrochemically controlled energy-efficient neuromorphic computing in functional/electronic oxides. Our findings suggest that line defects such as dislocations can drastically increase the hydrogen diffusion, which has important implications for hydrogen tuning in perovskite oxides provided the dislocations can be tuned in the first place, which has been achieved in recent years. The paper is in preparation, and planned to be submitted soon. Reference: Xufei Fang, Lars Dörrer, Svetlana Korneychuk, Astrid Pundt,Harald Schmidt, Christoph Kirchlechner, under preparation, Hydrogen response to dislocations in perovskite oxide, under preparation, 2024
Both aforementioned articles are based on fundamental reseach being unplanned and unforeseen in the first place, but these two preliminary works have clearly pushed forward our understanding of hydrogen-defects interactions in critical material systems related to hydrogen economy, which aligns perfectly with the overarching goal of TRITIME. They are simple material systems to test the work flow established in TRITIME and are therefore listed here.