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Mert Celikin

Researcher at University College Dublin

Publications -  45
Citations -  1097

Mert Celikin is an academic researcher from University College Dublin. The author has contributed to research in topics: Creep & Microstructure. The author has an hindex of 15, co-authored 41 publications receiving 698 citations. Previous affiliations of Mert Celikin include McGill University & Institut national de la recherche scientifique.

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Creep resistance in magnesium alloys

TL;DR: In this paper, the authors give an in depth review of the creep mechanisms in Mg alloys and provide insight into alloy design principles for further improvement in the creep performance of automotive Mg alloy systems.
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Mechanism of Stress Relaxation and Phase Transformation in Additively Manufactured Ti-6Al-4V via in situ High Temperature XRD and TEM Analyses

TL;DR: In this paper, the authors investigated the changes in crystal lattice, phase, composition and lattice strain up to 1000°C using both in situ high temperature X-ray diffraction (XRD) and transmission electron microscopy (TEM).
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Magnesium implant alloy with low levels of strontium and calcium: the third element effect and phase selection improve bio-corrosion resistance and mechanical performance.

TL;DR: The results indicate that the combined addition of optimal amounts of Ca and Sr is a promising approach to decrease the high degradation rate of Mg implants in physiological conditions, as well as attaining high ductility in the alloy.
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Improved photovoltaic performance from inorganic perovskite oxide thin films with mixed crystal phases

TL;DR: In this article, a power conversion efficiency of 4.20% under 1'sun illumination from Bi-Mn-O composite thin films with mixed BiMnO3 and biMn2O5 crystal phases was reported, where the photocurrent density and photovoltage mainly develop across grain boundaries and interfaces rather than within the grains.
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Effect of manganese on the creep behavior of magnesium and the role of α-Mn precipitation during creep

TL;DR: In this article, the activation energies of creep deformation were calculated from compression creep curves and microstructure analysis was conducted on as-cast (AC), heat treated (HT) and creep tested (CT) samples via transmission electron microscopy (TEM).