Automated Organization Profile

TU Ilmenau, Institute for Materials Engineering

Current S-Index

3.3

Sum of Dataset Indices for all datasets

Average Dataset Index per Dataset

1.7

Average Dataset Index per dataset

Total Datasets

2

Total datasets in this organization

Average FAIR Score

76.9%

Average FAIR Score per dataset

Total Citations

0

Total citations to the organization's datasets

Total Mentions

0

Total mentions of the organization's datasets

S-Index Interpretation

S-Index Over Time

Cumulative Citations Over Time

Cumulative Mentions Over Time

Datasets

DataSet / HEAF-NiAl: Ultrafast formation of single B2 phase AlCoCrFeNi high entropy alloy films by combustion of a reactive Ni/Al multilayer as heat source (Version: 1.0.0)

This are the main raw data and derived data for the publication "Ultrafast formation of single B2 phase AlCoCrFeNi high entropy alloy films by combustion of a reactive Ni/Al multilayer as heat source", Materials & Design 206 (2021) 109790  https://doi.org/10.1016/j.matdes.2021.109790 .AbstractHigh entropy alloy films of AlCoCrFeNi B2-ordered structure are formed during an ultrafast heating process by reactive Ni/Al multilayers. The self-propagating high-temperature reaction occurring in reactive Ni/Al multilayers after ignition represents an ultrafast heat source which is used for the transformation of a thin films Al/CoFe/CrNi multilayer structure into a single phase high entropy alloy film. The materials design of the combined multilayers thus determines the phase formation.Conventional rapid thermal annealing transforms the multilayer into a film with multiple equilibrium phases. Ultrafast combustion synthesis produces films with ultrafine-grained single-phase B2-ordered compound alloy. The heating rates during the combustion synthesis are in the order of one million K/s, much higher than those of the rapid thermal annealing, which is in the order of about 7 K/s. The results are compared with differential scanning calorimetry experiments with heating rates ranging from about 100 K/s up to 25000 K/s. It is shown that the heating rate clearly determines the phase formation in the multilayers. The rapid kinetics of the combustion prevents long-range diffusion and promotes the run-away transformation. Thus, multilayer combustion synthesis using reactive Ni/Al multilayer as heat source represents a new pathway for the fabrication of single phase high-entropy alloy films.

Authors

  • Wang, Anni ;
  • Gallino, Isabella ;
  • Riegler, Sascha Sebastian ;
  • Lin, Yi-Ting ;
  • Isaac, Nishchay A. ;
  • Sauni Camposano, Yesenia Haydee ;
  • Matthes, Sebastian ;
  • Flock, Dominik ;
  • Jacobs, Heiko O. ;
  • Yen, Hung-Wei ;
  • Schaaf, Peter
0 Citations0 Mentions77% FAIR0.5 Dataset Index
10.5281/zenodo.46230022021

DataSet / HEAF-NiAl: Ultrafast formation of single B2 phase AlCoCrFeNi high entropy alloy films by combustion of a reactive Ni/Al multilayer as heat source (Version: 1.0.0)

This are the main raw data and derived data for the publication "Ultrafast formation of single B2 phase AlCoCrFeNi high entropy alloy films by combustion of a reactive Ni/Al multilayer as heat source", Materials & Design 206 (2021) 109790  https://doi.org/10.1016/j.matdes.2021.109790 .AbstractHigh entropy alloy films of AlCoCrFeNi B2-ordered structure are formed during an ultrafast heating process by reactive Ni/Al multilayers. The self-propagating high-temperature reaction occurring in reactive Ni/Al multilayers after ignition represents an ultrafast heat source which is used for the transformation of a thin films Al/CoFe/CrNi multilayer structure into a single phase high entropy alloy film. The materials design of the combined multilayers thus determines the phase formation.Conventional rapid thermal annealing transforms the multilayer into a film with multiple equilibrium phases. Ultrafast combustion synthesis produces films with ultrafine-grained single-phase B2-ordered compound alloy. The heating rates during the combustion synthesis are in the order of one million K/s, much higher than those of the rapid thermal annealing, which is in the order of about 7 K/s. The results are compared with differential scanning calorimetry experiments with heating rates ranging from about 100 K/s up to 25000 K/s. It is shown that the heating rate clearly determines the phase formation in the multilayers. The rapid kinetics of the combustion prevents long-range diffusion and promotes the run-away transformation. Thus, multilayer combustion synthesis using reactive Ni/Al multilayer as heat source represents a new pathway for the fabrication of single phase high-entropy alloy films.

Authors

  • Wang, Anni ;
  • Gallino, Isabella ;
  • Riegler, Sascha Sebastian ;
  • Lin, Yi-Ting ;
  • Isaac, Nishchay A. ;
  • Sauni Camposano, Yesenia Haydee ;
  • Matthes, Sebastian ;
  • Flock, Dominik ;
  • Jacobs, Heiko O. ;
  • Yen, Hung-Wei ;
  • Schaaf, Peter
0 Citations0 Mentions77% FAIR0.5 Dataset Index
10.5281/zenodo.46230012021