A Low-Cost Method to Prepare Biocompatible Filaments with Enhanced Physico-Mechanical Properties for FDM 3D Printing

التفاصيل البيبلوغرافية
العنوان: A Low-Cost Method to Prepare Biocompatible Filaments with Enhanced Physico-Mechanical Properties for FDM 3D Printing
المؤلفون: Deck Khong Tan, Ali Nokhodchi, Mohammed Maniruzzaman, Niko Munzenrieder
المصدر: Current Drug Delivery. 18:700-711
بيانات النشر: Bentham Science Publishers Ltd., 2021.
سنة النشر: 2021
مصطلحات موضوعية: chemistry.chemical_classification, Materials science, Plastics extrusion, Hot Melt Extrusion Technology, Pharmaceutical Science, Biocompatible Materials, Polymer, Polyethylene glycol, Miscibility, chemistry.chemical_compound, chemistry, Chemical engineering, Polylactic acid, Printing, Three-Dimensional, PEG ratio, Drug delivery, Technology, Pharmaceutical, Extrusion, Tablets
الوصف: Background:: Fused Deposition Modelling (FDM) 3D printing has received much interest as a fabrication method in the medical and pharmaceutical industry due to its accessibility and cost-effectiveness. A low-cost method to produce biocompatible and biodegradable filaments can improve the usability of FDM 3D printing for biomedical applications. Objectives:: The feasibility of producing low-cost filaments suitable for FDM 3D printing via single screw and twin-screw hot melt extrusion was explored. Methods:: A single-screw extruder and a twin-screw extruder were used to produce biocompatible filaments composed of varying concentrations of polyethylene glycol (PEG) at 10%, 20%, 30% w/w and polylactic acid (PLA) 90%, 80% and 70% w/w, respectively. DSC, TGA and FTIR were employed to investigate the effect of PEG on the PLA filaments. Results:: The presence of PEG lowered the processing temperature of the formulation compositions via melt-extrusion, making it suitable for pharmaceutical applications. The use of PEG can lower the melting point of the PLA polymer to 170°C, hence lowering the printing temperature. PEG can also improve the plasticity of the filaments, as the rupture strain of twin-screw extruded filaments increased up to 10-fold as compared to the commercial filaments. Advanced application of FTIR analysis confirmed the compatibility and miscibility of PEG with PLA. Conclusion:: Twin-screw extrusion is more effective in producing a polymeric mixture of filaments as the mixing is more homogenous. The PEG/PLA filament is suitable to be used in 3D printing of medical or pharmaceutical applications such as medical implants, drug delivery systems, or personalised tablets.
تدمد: 1567-2018
الوصول الحر: https://explore.openaire.eu/search/publication?articleId=doi_dedup___::1dcc1a5d2582f7b585b68f93a2d174b8Test
https://doi.org/10.2174/1567201817999201103195456Test
رقم الانضمام: edsair.doi.dedup.....1dcc1a5d2582f7b585b68f93a2d174b8
قاعدة البيانات: OpenAIRE