Detail publikačního výsledku
Bioinspired Approach to 3D-Printed Auxetic Polymer- Hydrogel Composite via Frontal Polymerisation for Robust Scaffolds
BEČKA, F.; SEVRIUGINA, V.; LEPCIO, P.; WEITER, M.
Originální název
Bioinspired Approach to 3D-Printed Auxetic Polymer- Hydrogel Composite via Frontal Polymerisation for Robust Scaffolds
Anglický název
Bioinspired Approach to 3D-Printed Auxetic Polymer- Hydrogel Composite via Frontal Polymerisation for Robust Scaffolds
Druh
Abstrakt
Originální abstrakt
This study presents a novel 3D-printed auxetic polymer-polymer composite synthesized via frontal polymerisation, offering significant advantages in mechanical strength, energy absorption and process efficiency. The ability to use a hydrogel as the filling material and fabricate the scaffold from biocompatible or biodegradable materials makes this approach particularly promising for biomedical engineering, paving the way for advanced biomaterial applications in tissue engineering and regenerative medicine.
Anglický abstrakt
This study presents a novel 3D-printed auxetic polymer-polymer composite synthesized via frontal polymerisation, offering significant advantages in mechanical strength, energy absorption and process efficiency. The ability to use a hydrogel as the filling material and fabricate the scaffold from biocompatible or biodegradable materials makes this approach particularly promising for biomedical engineering, paving the way for advanced biomaterial applications in tissue engineering and regenerative medicine.
Klíčová slova
Biomaterials, 3D printing, auxetic, frontal polymerization
Klíčová slova v angličtině
Biomaterials, 3D printing, auxetic, frontal polymerization
Autoři
BEČKA, F.; SEVRIUGINA, V.; LEPCIO, P.; WEITER, M.
Vydáno
23.12.2025
Kniha
Book of Abstracts; 34th Annual Conference of the European Society for Biomaterials
Strany od
746
Strany do
747
Strany počet
2898
URL
BibTex
@misc{BUT199457,
author="Filip {Bečka} and Veronika {Sevriugina} and Petr {Lepcio} and Martin {Weiter}",
title="Bioinspired Approach to 3D-Printed Auxetic Polymer-
Hydrogel Composite via Frontal Polymerisation for Robust
Scaffolds",
booktitle="Book of Abstracts; 34th Annual Conference of the European Society for Biomaterials",
year="2025",
pages="746--747",
url="https://esb2025.org/wp-content/uploads/2025/12/Book-of-Abstract-2.pdf",
note="Abstract"
}Dokumenty