Romero-Araya, P.; Pino, V.; Nenen, A.; Cárdenas, V.; Pavicic, F.; Ehrenfeld, P.; Serandour, G.; Lisoni, J.G.; Moreno-Villoslada, I.; Flores, M.E.
Combining Materials Obtained by 3D-Printing and Electrospinning from Commercial Polylactide Filament to Produce Biocompatible Composites. Polymers 2021, 13, 3806.
https://doi.org/10.3390/polym13213806
AMA Style
Romero-Araya P, Pino V, Nenen A, Cárdenas V, Pavicic F, Ehrenfeld P, Serandour G, Lisoni JG, Moreno-Villoslada I, Flores ME.
Combining Materials Obtained by 3D-Printing and Electrospinning from Commercial Polylactide Filament to Produce Biocompatible Composites. Polymers. 2021; 13(21):3806.
https://doi.org/10.3390/polym13213806
Chicago/Turabian Style
Romero-Araya, Pablo, Victor Pino, Ariel Nenen, Verena Cárdenas, Francisca Pavicic, Pamela Ehrenfeld, Guillaume Serandour, Judit G. Lisoni, Ignacio Moreno-Villoslada, and Mario E. Flores.
2021. "Combining Materials Obtained by 3D-Printing and Electrospinning from Commercial Polylactide Filament to Produce Biocompatible Composites" Polymers 13, no. 21: 3806.
https://doi.org/10.3390/polym13213806
APA Style
Romero-Araya, P., Pino, V., Nenen, A., Cárdenas, V., Pavicic, F., Ehrenfeld, P., Serandour, G., Lisoni, J. G., Moreno-Villoslada, I., & Flores, M. E.
(2021). Combining Materials Obtained by 3D-Printing and Electrospinning from Commercial Polylactide Filament to Produce Biocompatible Composites. Polymers, 13(21), 3806.
https://doi.org/10.3390/polym13213806