Mukherjee, T.; Breitbach, B.; Meneghetti, M.; Rabe, M.: Broadening the Ambit of Raman Solvation Shell Spectroscopy on Small Particle Dispersions. Journal of Physical Chemistry C 129 (39), pp. 17892 - 17901 (2025)
Mukherjee, T.; Breitbach, B.; Meneghetti, M.; Rabe, M.: Raman hydration shell spectroscopy can be applied to study solvation shells of nanomaterials. 17th International conference on materials chemistry (MC17), Edinburgh, Scotland, UK (2025)
Mukherjee, T.: Applying Raman Solvation Shell Spectroscopy to Study Water Surrounding Nanoparticles. RESOLV Klausurtagung, Marienfeld (Harsewinkel), Germany (2025)
Mukherjee, T.; Rabe, M.: Solvation Shell Water around Citrate-stabilised Gold Nanoparticle. Bunsen-Tagung 2024 - 123rd Annual Conference of the German Bunsen Society for Physical Chemistry
, Aachen, Germany (2024)
International researcher team presents a novel microstructure design strategy for lean medium-manganese steels with optimized properties in the journal Science
In this project we study the development of a maraging steel alloy consisting of Fe, Ni and Al, that shows pronounced response to the intrinsic heat treatment imposed during Laser Additive Manufacturing (LAM). Without any further heat treatment, it was possible to produce a maraging steel that is intrinsically precipitation strengthened by an…
The aim of the current study is to investigate electrochemical corrosion mechanisms by examining the metal-liquid nanointerfaces. To achieve this, corrosive fluids will be strategically trapped within metal structures using novel additive micro fabrication techniques. Subsequently, the nanointerfaces will be analyzed using cryo-atom probe…
TiAl-based alloys currently mature into application. Sufficient strength at high temperatures and ductility at ambient temperatures are crucial issues for these novel light-weight materials. By generation of two-phase lamellar TiAl + Ti3Al microstructures, these issues can be successfully solved. Because oxidation resistance at high temperatures is…
We plan to investigate the rate-dependent tensile properties of 2D materials such as metal thin films and PbMoO4 (PMO) films by using a combination of a novel plan-view FIB based sample lift out method and a MEMS based in situ tensile testing platform inside a TEM.