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{101<sup>-</sup>2} twinning mechanism during <em>in situ</em> micro-tensile loading of pure Mg: Role of basal slip and twin-twin interactions
Della Ventura, N. M., Kalácska, S., Casari, D., Edwards, T. E. J., Sharma, A., Michler, J., … Maeder, X. (2021). {101-2} twinning mechanism during in situ micro-tensile loading of pure Mg: Role of basal slip and twin-twin interactions. Materials and Design, 197, 109206 (15 pp.). https://doi.org/10.1016/j.matdes.2020.109206
High resolution digital image correlation mapping of strain localization upon room and high temperature, high cycle fatigue of a TiAl intermetallic alloy
Edwards, T. E. J., Di Gioacchino, F., & Clegg, W. J. (2021). High resolution digital image correlation mapping of strain localization upon room and high temperature, high cycle fatigue of a TiAl intermetallic alloy. International Journal of Fatigue, 142, 105905 (13 pp.). https://doi.org/10.1016/j.ijfatigue.2020.105905
A novel fiber-fretting test for tribological characterization of the fiber/matrix interface
Kabel, J., Edwards, T. E. J., Hain, C., Kochetkova, T., Parkison, D., Michler, J., & Hosemann, P. (2021). A novel fiber-fretting test for tribological characterization of the fiber/matrix interface. Composites Part B: Engineering, 206, 108535 (16 pp.). https://doi.org/10.1016/j.compositesb.2020.108535
On the extraction of yield stresses from micro-compression experiments
Pürstl, J. T., Jones, H. O., Edwards, T. E. J., Thompson, R. P., Di Gioacchino, F., Jones, N. G., & Clegg, W. J. (2021). On the extraction of yield stresses from micro-compression experiments. Materials Science and Engineering A: Structural Materials: Properties, Microstructure and Processing, 800, 140323 (8 pp.). https://doi.org/10.1016/j.msea.2020.140323
Revealing nanoscale deformation mechanisms caused by shear-based material removal on individual grains of a Ni-based superalloy
Xu, D., Edwards, T. E. J., Liao, Z., Maeder, X., Ramachandramoorthy, R., Jain, M., … Axinte, D. (2021). Revealing nanoscale deformation mechanisms caused by shear-based material removal on individual grains of a Ni-based superalloy. Acta Materialia, 212, 116929 (15 pp.). https://doi.org/10.1016/j.actamat.2021.116929
High-purity copper structures from a perfluorinated copper carboxylate using focused electron beam induced deposition and post-purification
Berger, L., Jurczyk, J., Madajska, K., Edwards, T. E. J., Szymańska, I., Hoffmann, P., & Utke, I. (2020). High-purity copper structures from a perfluorinated copper carboxylate using focused electron beam induced deposition and post-purification. ACS Applied Electronic Materials, 2(7), 1989-1996. https://doi.org/10.1021/acsaelm.0c00282
A new mechanism of strain transfer in polycrystals
Di Gioacchino, F., Edwards, T. E. J., Wells, G. N., & Clegg, W. J. (2020). A new mechanism of strain transfer in polycrystals. Scientific Reports, 10(1), 10082 (15 pp.). https://doi.org/10.1038/s41598-020-66569-7
Flexible <em>ϵ</em>-Fe<sub>2</sub>O<sub>3</sub>-terephthalate thin-film magnets through ALD/MLD
Philip, A., Niemelä, J. P., Tewari, G. C., Putz, B., Edwards, T. E. J., Itoh, M., … Karppinen, M. (2020). Flexible ϵ-Fe2O3-terephthalate thin-film magnets through ALD/MLD. ACS Applied Materials and Interfaces, 12(19), 21912-21921. https://doi.org/10.1021/acsami.0c04665
Direct co-deposition of mono-sized nanoparticles during sputtering
Polyakov, M. N., Schoeppner, R. L., Pethö, L., Edwards, T. E. J., Thomas, K., Könnyű, B., … Michler, J. (2020). Direct co-deposition of mono-sized nanoparticles during sputtering. Scripta Materialia, 186, 387-391. https://doi.org/10.1016/j.scriptamat.2020.05.032
Elemental characterization of Al nanoparticles buried under a Cu thin film - TOF-SIMS vs. STEM/EDX
Priebe, A., Barnes, J. P., Edwards, T. E. J., Huszár, E., Pethö, L., & Michler, J. (2020). Elemental characterization of Al nanoparticles buried under a Cu thin film - TOF-SIMS vs. STEM/EDX. Analytical Chemistry, 92(18), 12518-12527. https://doi.org/10.1021/acs.analchem.0c02361
Mechanical and optical degradation of flexible optical solar reflectors during simulated low earth orbit thermal cycling
Putz, B., Wurster, S., Edwards, T. E. J., Völker, B., Milassin, G., Többens, D. M., … Cordill, M. J. (2020). Mechanical and optical degradation of flexible optical solar reflectors during simulated low earth orbit thermal cycling. Acta Astronautica, 175, 277-289. https://doi.org/10.1016/j.actaastro.2020.05.032
Effect of high strain rates and temperature on the micromechanical properties of 3D-printed polymer structures made by two-photon lithography
Rohbeck, N., Ramachandramoorthy, R., Casari, D., Schürch, P., Edwards, T. E. J., Schilinsky, L., … Michler, J. (2020). Effect of high strain rates and temperature on the micromechanical properties of 3D-printed polymer structures made by two-photon lithography. Materials and Design, 195, 108977 (9 pp.). https://doi.org/10.1016/j.matdes.2020.108977
Synthesis of model Al-Al<sub>2</sub>O<sub>3</sub> multilayer systems with monolayer oxide thickness control by circumventing native oxidation
Xie, T., Edwards, T. E. J., della Ventura, N. M., Casari, D., Huszár, E., Fu, L., … Pethö, L. (2020). Synthesis of model Al-Al2O3 multilayer systems with monolayer oxide thickness control by circumventing native oxidation. Thin Solid Films, 711, 138287 (8 pp.). https://doi.org/10.1016/j.tsf.2020.138287
Crystal plasticity analysis of deformation anisotropy of lamellar TiAl alloy: 3D microstructure-based modelling and <em>in-situ</em> micro-compression
Chen, L., Edwards, T. E. J., Di Gioacchino, F., Clegg, W. J., Dunne, F. P. E., & Pham, M. S. (2019). Crystal plasticity analysis of deformation anisotropy of lamellar TiAl alloy: 3D microstructure-based modelling and in-situ micro-compression. International Journal of Plasticity, 119, 344-360. https://doi.org/10.1016/j.ijplas.2019.04.012
An experimental study of the polycrystalline plasticity of lamellar titanium aluminide
Edwards, T. E. J., Di Gioacchino, F., & Clegg, W. J. (2019). An experimental study of the polycrystalline plasticity of lamellar titanium aluminide. International Journal of Plasticity, 118, 291-319. https://doi.org/10.1016/j.ijplas.2019.02.013
Deformation of lamellar γ-TiAl below the general yield stress
Edwards, T. E. J., Di Gioacchino, F., Goodfellow, A. J., Mohanty, G., Wehrs, J., Michler, J., & Clegg, W. J. (2019). Deformation of lamellar γ-TiAl below the general yield stress. Acta Materialia, 163, 122-139. https://doi.org/10.1016/j.actamat.2018.09.061
Slip bands in lamellar TiAl during high cycle fatigue microcompression by correlative total strain mapping, diffraction orientation mapping and transmission electron imaging
Edwards, T. E. J., Di Gioacchino, F., Goodfellow, A. J., & Clegg, W. J. (2019). Slip bands in lamellar TiAl during high cycle fatigue microcompression by correlative total strain mapping, diffraction orientation mapping and transmission electron imaging. International Journal of Fatigue, 124, 520-527. https://doi.org/10.1016/j.ijfatigue.2019.03.016
Transverse deformation of a lamellar TiAl alloy at high temperature by <i>in situ</i> microcompression
Edwards, T. E. J., Di Gioacchino, F., Goodfellow, A. J., Mohanty, G., Wehrs, J., Michler, J., & Clegg, W. J. (2019). Transverse deformation of a lamellar TiAl alloy at high temperature by in situ microcompression. Acta Materialia, 166, 85-99. https://doi.org/10.1016/j.actamat.2018.11.050
Micro-mechanical testing of ceramic matrix composites, extraction of interface properties and impact on composite optimization
Kabel, J., Parkison, D., Edwards, T., Michler, J., & Hosemann, P. (2019). Micro-mechanical testing of ceramic matrix composites, extraction of interface properties and impact on composite optimization. Presented at the ECI Nanomechanical testing in materials research and development VII. Malaga, Spain.
Microstructure-driven strengthening of TiB<sub>2</sub> coatings deposited by pulsed magnetron sputtering
Polyakov, M. N., Morstein, M., Maeder, X., Nelis, T., Lundin, D., Wehrs, J., … Michler, J. (2019). Microstructure-driven strengthening of TiB2 coatings deposited by pulsed magnetron sputtering. Surface and Coatings Technology, 368, 88-96. https://doi.org/10.1016/j.surfcoat.2019.04.042