Maxime Mieszala
Swiss Federal Laboratories for Materials Science and Technology
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Publication
Featured researches published by Maxime Mieszala.
Small | 2017
Maxime Mieszala; Madoka Hasegawa; Gaylord Guillonneau; Jens Bauer; Rejin Raghavan; Cedric Frantz; Oliver Kraft; Stefano Mischler; Johann Michler; Laetitia Philippe
By designing advantageous cellular geometries and combining the material size effects at the nanometer scale, lightweight hybrid microarchitectured materials with tailored structural properties are achieved. Prior studies reported the mechanical properties of high strength cellular ceramic composites, obtained by atomic layer deposition. However, few studies have examined the properties of similar structures with metal coatings. To determine the mechanical performance of polymer cellular structures reinforced with a metal coating, 3D laser lithography and electroless deposition of an amorphous layer of nickel-boron (NiB) is used for the first time to produce metal/polymer hybrid structures. In this work, the mechanical response of microarchitectured structures is investigated with an emphasis on the effects of the architecture and the amorphous NiB thickness on their deformation mechanisms and energy absorption capability. Microcompression experiments show an enhancement of the mechanical properties with the NiB thickness, suggesting that the deformation mechanism and the buckling behavior are controlled by the brittle-to-ductile transition in the NiB layer. In addition, the energy absorption properties demonstrate the possibility of tuning the energy absorption efficiency with adequate designs. These findings suggest that microarchitectured metal/polymer hybrid structures are effective in producing materials with unique property combinations.
Nanoscale | 2016
Maxime Mieszala; Gaylord Guillonneau; Madoka Hasegawa; Rejin Raghavan; Jeffrey M. Wheeler; Stefano Mischler; Johann Michler; Laetitia Philippe
The mechanical properties of electrodeposited copper with highly-oriented nanoscale twins were investigated by micropillar compression. Uniform nanotwinned copper films with preferred twin orientations, either vertical or horizontal, were obtained by controlling the plating conditions. In addition, an ultrafine grained copper film was synthesized to be used as a reference sample. The mechanical properties were assessed by in situ SEM microcompression of micropillars fabricated with a focused ion beam. Results show that the mechanical properties are highly sensitive to the twin orientation. When compared to the ultrafine grained sample, an increase of 44% and 130% in stress at 5% offset strain was observed in quasi-static tests for vertically and horizontally aligned twins, respectively. Inversely strain rate jump microcompression testing reveals higher strain sensitivity for vertical twins. These observations are attributed to a change in deformation mechanism from dislocation pile-ups at the twin boundary for horizontal twins to dislocations threading inside the twin lamella for vertical twins.
Electrochimica Acta | 2015
Madoka Hasegawa; Maxime Mieszala; Yucheng Zhang; Rolf Erni; Johann Michler; Laetitia Philippe
Journal of Materials Processing Technology | 2017
Maxime Mieszala; P. Lozano Torrubia; D.A. Axinte; J.J. Schwiedrzik; Y. Guo; Stefano Mischler; Johann Michler; Laetitia Philippe
Materials & Design | 2018
Gaylord Guillonneau; Maxime Mieszala; Juri Wehrs; Jakob Schwiedrzik; Serge Grop; Damian Frey; Laetitia Philippe; Jean-Marc Breguet; Johann Michler; Jeffrey M. Wheeler
225th ECS Meeting (May 11-15, 2014) | 2014
Peter Dunne; Maxime Mieszala; Victor Le Nader; Laetitia Philippe; Johann Michler
Cirp Annals-manufacturing Technology | 2018
Zhirong Liao; D.A. Axinte; Maxime Mieszala; Rachid M’Saoubi; Johann Michler; M.C. Hardy
Archive | 2017
Johann Michler; Gaylord Guillonneau; Maxime Mieszala; Laetitia Philippe; Jens Bauer; Oliver Kraft
Archive | 2017
Laszlo Pethö; Jeffrey M. Wheeler; Patrik Schürch; Jakob Schwiedrzik; Laetitia Philippe; Maxime Mieszala; Johann Michler
229th ECS Meeting (May 29 - June 2, 2016) | 2016
Maxime Mieszala; Madoka Hasegawa; S. Mischler; Johann Michler; Laetitia Philippe
Collaboration
Dive into the Maxime Mieszala's collaboration.
Swiss Federal Laboratories for Materials Science and Technology
View shared research outputsSwiss Federal Laboratories for Materials Science and Technology
View shared research outputsSwiss Federal Laboratories for Materials Science and Technology
View shared research outputsSwiss Federal Laboratories for Materials Science and Technology
View shared research outputsSwiss Federal Laboratories for Materials Science and Technology
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