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Vasileia Melissinaki

Researcher at Foundation for Research & Technology – Hellas

Publications -  28
Citations -  976

Vasileia Melissinaki is an academic researcher from Foundation for Research & Technology – Hellas. The author has contributed to research in topics: Laser & Optical fiber. The author has an hindex of 12, co-authored 26 publications receiving 787 citations. Previous affiliations of Vasileia Melissinaki include Institution of Engineers, Sri Lanka & University of Crete.

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Journal ArticleDOI

Advances in pantographic structures: design, manufacturing, models, experiments and image analyses

Francesco dell’Isola, +52 more
TL;DR: An organic scheme of the whole process of design, fabrication, experiments, models, models and image analyses of pantographic metamaterials is presented.
Journal ArticleDOI

Direct laser writing of 3D scaffolds for neural tissue engineering applications.

TL;DR: The results showed that the photocurable polylactide (PLA) resin can be readily structured via direct laser write (DLW) with a femtosecond Ti:sapphire laser and submicrometer structures can be produced.
Proceedings Article

Direct Laser Writing of 3D scaffolds for neural tissue engineering applications

TL;DR: In this paper, the authors report on the fabrication of high resolution 3D scaffolds of polylactide-based materials using direct laser writing and explore their use as neural tissue engineering scaffolds.
Journal ArticleDOI

On the design and fabrication by two-photon polymerization of a readily assembled micro-valve

TL;DR: In this article, the conceptual design and fabrication of a complex shape, readily assembled micro check valve using the two-photon polymerization technique was reported, which exhibited good dimensional accuracy when compared to the CAD-created valve design and the capability of an internal moving component to perform its intended function.
Journal ArticleDOI

Force-displacement relationship in micro-metric pantographs: Experiments and numerical simulations

TL;DR: In this article, the mathematical discrete model of Hencky type is used for describing the mechanical behavior of micro-metric Pantographic elementary modules, and the authors conclude that the concept of pantographic microstructure seems feasible for micrometrically architected microstructured (meta)materials as well.