Automated Author Profile

Janczak-Rusch J,

Empa, Swiss Federal Laboratories for Materials Science and Technology, Laboratory for Joining Technologies and Corrosion, berlandstrasse 129, Dbendorf CH8600, Switzerland

Current S-Index

0.2

Sum of Dataset Indices for all datasets

Average Dataset Index per Dataset

0.1

Average Dataset Index per dataset

Total Datasets

2

Total datasets for this author

Average FAIR Score

15.4%

Average FAIR Score per dataset

Total Citations

0

Total citations to the author's datasets

Total Mentions

0

Total mentions of the author's datasets

S-Index Interpretation

S-Index Over Time

Cumulative Citations Over Time

Cumulative Mentions Over Time

Datasets

THE IMPACT OF INDIVIDUAL LAYER THICKNESS ON THE CU/W NANO-MULTILAYER-TO-NANOCOMPOSITE TRANSITION

Nanomultilayers (NMLs) and nanocomposites (NCs) are functional nanoarchitectures, which mechanical, chemical and/or physical properties can be tailored by smart microstructural and interfacial design 1. NMLs, constituted of alternating nanolayers of immiscible metals, can evolve upon thermal treatment in a NC (multilayer structure degradation) with tailored mechanical, electrical and/or thermal properties. Particularly, NMLtoNC transition was observed in Cu/W NMLs (alternating bilayers: 5 nm Cu 5 nm W) during high temperature annealing in vacuum 2. It was shown that the driving force for the transformation is provided by the minimization of the total Gibbs energy, as achieved by a reduction of internal interfaces.

Authors

  • Druzhinin, A.V. ;
  • Ariosa, D. ;
  • Siol, S. ;
  • Ott, N. ;
  • Straumal, B.B. ;
  • Janczak-Rusch J, ;
  • Jeurgens, L.PH. ;
  • Cancellieri, C.
0 Citations0 Mentions15% FAIR0.1 Dataset Index
10.26201/issp.2019.45.557/def.mater.52019

THE CU/W NANO-MULTILAYER-TO-NANOCOMPOSITE TRANSITION: THE ROLE OF RESIDUAL STRESSES AND INDIVIDUAL NANO-LAYER THICKNESSES

Nanomultilayers (NMLs) and nanocomposites (NCs) are functional nanoarchitectures, which mechanical, chemical and/or physical properties can be tailored by smart microstructural and interfacial design 1. NMLs, constituted of alternating nanolayers of immiscible metals, can evolve upon thermal treatment in a NC (multilayer structure degradation) with tailored mechanical, electrical and/or thermal properties. Particularly, NMLtoNC transition was observed in Cu/W NMLs (alternating bilayers: 5 nm Cu 5 nm W) during high temperature annealing in vacuum

Authors

  • Druzhinin, A.V. ;
  • Ariosa, D. ;
  • Straumal, B.B. ;
  • Siol, S. ;
  • Ott, N. ;
  • Janczak-Rusch J, ;
  • Jeurgens, P.H. ;
  • Cancellieri, C.
0 Citations0 Mentions15% FAIR0.1 Dataset Index
10.26201/issp.2019.45.557/xii_fks.402019