© Dagmar Fischer
Mitarbeiterinnen und Mitarbeiter
Abgeschlossene Dissertationen
2021–2026 Muhammad Awais Altaf, Development of High-Entropy Carbides Thin Films via DC Magnetron Sputtering, (2026) pp 176 (TU Wien) repositum.tuwien.at/handle/20.500.12708/226373
2020–2025 Christian Katsich, Innovative hard facing laser claddings, (2025) pp 159 (TU Wien) repositum.tuwien.at/handle/20.500.12708/223138
2021–2025 Balint Hajas, Functional Nitride and Carbide Coatings for Demanding Environments, (2025) pp 153 (TU Wien) repositum.tuwien.at/handle/20.500.12708/225289
2022–2025 Shuyao Lin, Atomic-to-Nanoscale Modeling of Diborides via Machine Learning Interatomic Potentials, (2025) pp 143 (TU Wien) repositum.tuwien.at/handle/20.500.12708/219004
2020–2024 Harald Rojac, Sustainable iron aluminide-based laser claddings, (2024) pp 187 (TU Wien) repositum.tuwien.at/handle/20.500.12708/216072
2020–2024 Chun Hu, Development of Al-containing Nitride and Diboride Coatings for Improved Thermal Stability, (2024) pp 141 (TU Wien) repositum.tuwien.at/handle/20.500.12708/200511
2020–2024 Rebecca Janknecht, Understanding the Solubility and Mechanical Elastic Properties of Ti–B–N Thin Films, (2024) pp 134 (TU Wien) repositum.tuwien.at/handle/20.500.12708/198857
2020–2024 Barbara Schmid, Development of Transition Metal Carbide-Based Superlattices, (2024) pp 102 (TU Wien) repositum.tuwien.at/handle/20.500.12708/198713
2020–2023 Matthias Freisinger, On the formation of stratified surface layers associated to fatigue cracks on rail wheels, (2023) pp 182 (TU Wien, external) repositum.tuwien.at/handle/20.500.12708/193976
2018–2021 Zecui Gao, Architectural Design of Transition Metal Nitride Thin Films for Improved Mechanical or Electrical Properties, (2022) pp 178 (TU Wien) repositum.tuwien.at/handle/20.500.12708/101920
2018–2021 Stefan Kagerer, High-temperature oxidation resistant coating concepts for γ-TiAl based alloys, (2021) pp 155 (TU Wien) repositum.tuwien.at/handle/20.500.12708/18568
2018–2021 Andreas Kretschmer, Computationally Guided Optimization of High-Entropy Sublattice Ceramic Thin Films, (2021) pp 224 (TU Wien) repositum.tuwien.at/handle/20.500.12708/18667
2017–2021 Nikola Koutna, Superlattice Design for Nitride-Based Thin Films, (2021) pp 125 (TU Wien) repositum.tuwien.at/handle/20.500.12708/17341
2017–2021 Antonia Wagner, Quantification of Residual Stresses and Fracture Toughness of Ceramic Multilayer Thin Films, (2021) pp 155 (TU Wien) repositum.tuwien.at/handle/20.500.12708/16926
2017–2020 Julian Buchinger, Toughness-Governing Mechanisms in Transition Metal Nitride Thin Films, (2020) pp 146 (TU Wien) repositum.tuwien.at/handle/20.500.12708/15842
2017–2020 Alexander Kirnbauer, The High-Entropy Concept for Ceramic Thin Films, (2020) pp 108 (TU Wien) repositum.tuwien.at/handle/20.500.12708/1406
2016–2019 Rainer Hahn, Fracture toughness of hard coatings, (2019) pp 140 (TU Wien) repositum.tuwien.at/handle/20.500.12708/78524
2016–2019 Hidetoshi Asanuma, Hard Ti–Al–N endowed with high heat-resistance through alloying with lanthanoids, (2019) pp 85 (TU Wien). repositum.tuwien.at/handle/20.500.12708/13822
2015–2018 Valentin Dalbauer, Phase Formation of Cathodic Arc Evaporated Al-Cr and Al-Cr-O Thin Films, (2018) pp 150 (TU Wien) repositum.tuwien.at/handle/20.500.12708/79298
2015–2018 Bernhard Kohlhauser, Phase transformation derived protective effects of PVD coatings, (2018) pp 174 (TU Wien) repositum.tuwien.at/handle/20.500.12708/1879
2015–2018 Vincent Moraes, Ab initio driven design of ternary boride-based thin films, (2018) pp 103 (TU Wien) repositum.tuwien.at/handle/20.500.12708/158664
2015–2018 Elias Aschauer, Mo-Si-B based coatings: Compositional and architectural approaches for high temperature environments, (2018) pp 119 (TU Wien).
2014–2017 Robert Raab, Architecturally-designed Al-Cr based nitride/oxide and oxynitride coatings for high temperature applications, (2017) pp 153 (TU Wien). repositum.tuwien.at/handle/20.500.12708/20705
2014–2017 Stefan Albert Glatz, Influence of Transition Metals (Zr, Mo, W) on the High Temperature Performance of Arc Evaporated Ti-Al-N Hard Coating, (2017) pp 115 (TU Wien) repositum.tuwien.at/handle/20.500.12708/80107
2014–2017 Wolfgang Seidl, Properties enhancement of Ti-Al-N through Ta alloying and architectural design, (2017) pp 120 (TU Wien) repositum.tuwien.at/handle/20.500.12708/158651
2013–2016 Fedor Klimashin, Mo-based hard nitride coatings, (2016) pp 100 (TU Wien). repositum.tuwien.at/handle/20.500.12708/2267
2012–2015 Christian Martin Koller, Triggering the Phase Evolution within TiAlN- and Al2O3-based Hard Coatings by Alloying and Microstructural Concepts, (2015) pp 199 (TU Wien) repositum.tuwien.at/handle/20.500.12708/79777
2012–2015 Liangcai Zhou, First-principle studies of CrN-based materials, (2015) pp 144 (TU Wien repositum.tuwien.at/handle/20.500.12708/7066
2012–2015 Helmut Riedl, High Temperature, Oxidation and Wear Resistant Coatings, (2015) pp 127 (TU Wien) repositum.tuwien.at/handle/20.500.12708/78463
2012–2014 Corinna Sabitzer, Phase evolution in AlCrN multilayers and diffusion studies of TiN- and CrN-based hard coatings, (2014) pp 110 (TU Wien). repositum.tuwien.at/handle/20.500.12708/3147
2012–2013 Robert Hollerweger, The Role of Tantalum on Structure, Thermal Stability, and Oxidation Resistance of Ti-Al-N and Cr-Al-N Coatings, (2013) pp 120 (TU Wien). repositum.tuwien.at/handle/20.500.12708/159367