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Polymer infiltrated ceramic networks with biocompatible adhesive and 3D-printed highly porous scaffolds

材料科学 甲基丙烯酸酯 复合材料 共聚物 陶瓷 立方氧化锆 聚合物 胶粘剂 化学工程 图层(电子) 工程类
作者
Ľudmila Hodásová,Jordi Sans,Brenda G. Molina,Carlos Alemán,L. Llanes,Gemma Fargas,Elaine Armelín
出处
期刊:Additive manufacturing [Elsevier BV]
卷期号:39: 101850-101850 被引量:36
标识
DOI:10.1016/j.addma.2021.101850
摘要

Abstract Herein, for the first time is described the design of a novel porous zirconia scaffolds manufactured by using polymer-infiltrated ceramic network (PICN) and 3D-printing technologies. Cubic geometry of pieces was obtained by perpendicular layer-by-layer deposition of yttrium-stabilized tetragonal zirconia polycrystal (3Y-TZP) and Pluronic® hydrogel ceramic paste. The specimens were prepared by robocasting assembly with 50% infill and 50% of pores, as feed setup. Bisphenol A glycerolate dimethacrylate (Bis-GMA) and tri(ethylenglycol) dimethacrylate (TEGDMA) copolymer, a well-known biocompatible adhesive, which is widely used in dentistry field, was employed to reinforce the pores of the 3D-printed ceramic structure. The success of the acrylate polymer infiltration above the scaffold surface and among the 3Y-TZP filaments was achieved through previous ceramic functionalization with 3-(trimethoxysilyl)propyl methacrylate (γ-MPS). The well infiltration of the material on pores was evaluated by gravimetry, obtaining a value of 87.5 ± 6.6% of pores covered by the adhesive. Such successful infiltration of methacrylate copolymer had also a positive effect on the mechanical properties of the scaffold material, being the PICN sample that one with the highest elongation resistance. The new system showed reduced bacteria proliferation, over 24 h of incubation with Gram-negative Escherichia coli and Gram-positive Streptococcus salivarius bacteria lines, when compared to the control.
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