Gutiérrez-Urrutia, I.; Archie, F. M. F.; Raabe, D.; Yan, F.; Tao, N.-R.; Lu, K.: Plastic accommodation at homophase interfaces between nanotwinned and recrystallized grains in an austenitic duplex-microstructured steel. Science and Technology of Advanced Materials 17 (1), pp. 29 - 36 (2016)
Gutiérrez-Urrutia, I.; Raabe, D.: High strength and ductile low density austenitic FeMnAlC steels: Simplex and alloys strengthened by nanoscale ordered carbides. Materials Science and Technology 30 (9), pp. 1099 - 1104 (2014)
Gutiérrez-Urrutia, I.; Böttcher, A.; Lahn, L.; Raabe, D.: Microstructure-magnetic property relations in grain-oriented electrical steels: quantitative analysis of the sharpness of the Goss orientation. Journal of Materials Science 49 (1), pp. 269 - 276 (2014)
Marceau, R. K. W.; Gutiérrez-Urrutia, I.; Herbig, M.; Moore, K. L.; Lozano-Perez, S.; Raabe, D.: Multi-Scale Correlative Microscopy Investigation of both Structure and Chemistry of Deformation Twin Bundles in Fe–Mn–C TWIP Steel. Microscopy & Microanalysis 19 (6), pp. 1581 - 1585 (2013)
Biswas, S.; Sket, F.; Chiumenti, M.; Gutiérrez-Urrutia, I.; Molina-Aldareguía, J. M.; Pérez-Prado, M. T.: Relationship Between the 3D Porosity and β-Phase Distributions and the Mechanical Properties of a High Pressure Die Cast AZ91 Mg Alloy. Metallurgical and Materials Transactions A 44 (9), pp. 4391 - 4403 (2013)
Gutiérrez-Urrutia, I.; Zaefferer, S.; Raabe, D.: Coupling of Electron Channeling with EBSD: Toward the Quantitative Characterization of Deformation Structures in the SEM. JOM: the Journal of the Minerals, Metals & Materials Society (TMS) 65 (9), pp. 1229 - 1236 (2013)
Srinivasarao, B.; Zhilyaev, A.P.; Gutiérrez-Urrutia, I.; Pérez-Prado, M. T.: Stabilization of metastable phases in Mg–Li alloys by high-pressure torsion. Scripta Materialia 68, pp. 583 - 586 (2013)
Boehlert, C.; Chen, Z.; Gutiérrez-Urrutia, I.; Llorca, J.; Pérez-Prado, M. T.: On the controversy about the presence of grain boundary sliding in Mg AZ31. Materials Science Forum 735, pp. 22 - 25 (2013)
Fernández, A.; Jérusalem, A.; Gutiérrez-Urrutia, I.; Pérez-Prado, M. T.: 3D investigation of the grain boundary-twin interactions in a Mg AZ31 alloy by 3D EBSD and continuum modeling. Acta Materialia 61, pp. 7679 - 7692 (2013)
Gutiérrez-Urrutia, I.; Raabe, D.: Influence of Al content and precipitation state on the mechanical behavior of austenitic high-Mn low-density steels. Scripta Materialia 68 (6), pp. 343 - 347 (2013)
Hydrogen in aluminium can cause embrittlement and critical failure. However, the behaviour of hydrogen in aluminium was not yet understood. Scientists at the Max-Planck-Institut für Eisenforschung were able to locate hydrogen inside aluminium’s microstructure and designed strategies to trap the hydrogen atoms inside the microstructure. This can…
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.
This project aims to investigate the influence of grain boundaries on mechanical behavior at ultra-high strain rates and low temperatures. For this micropillar compressions on copper bi-crystals containing different grain boundaries will be performed.
Oxidation and corrosion of noble metals is a fundamental problem of crucial importance in the advancement of the long-term renewable energy concept strategy. In our group we use state-of-the-art electrochemical scanning flow cell (SFC) coupled with inductively coupled plasma mass spectrometer (ICP-MS) setup to address the problem.
In this project we investigate the hydrogen distribution and desorption behavior in an electrochemically hydrogen-charged binary Ni-Nb model alloy. The aim is to study the role of the delta phase in hydrogen embrittlement of the Ni-base alloy 718.
We will investigate the electrothermomechanical response of individual metallic nanowires as a function of microstructural interfaces from the growth processes. This will be accomplished using in situ SEM 4-point probe-based electrical resistivity measurements and 2-point probe-based impedance measurements, as a function of mechanical strain and…
Hydrogen induced embrittlement of metals is one of the long standing unresolved problems in Materials Science. A hierarchical multiscale approach is used to investigate the underlying atomistic mechanisms.
For understanding the underlying hydrogen embrittlement mechanism in transformation-induced plasticity steels, the process of damage evolution in a model austenite/martensite dual-phase microstructure following hydrogenation was investigated through multi-scale electron channelling contrast imaging and in situ optical microscopy.
The project aims to study corrosion, a detrimental process with an enormous impact on global economy, by combining denstiy-functional theory calculations with thermodynamic concepts.