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Additive manufacturing of magnesium-doped calcium silicate/zirconia ceramic scaffolds with projection-based 3D printing: Sintering, mechanical and biological behavior.

Authors :
Shao, Huifeng
Zhu, Jiahua
Zhao, Xiao
Xia, Pengcheng
Wang, Yujie
Zhang, Tao
Gong, Youping
He, Yong
Yao, Qingqiang
Source :
Ceramics International. Mar2024, Vol. 50 Issue 6, p9280-9292. 13p.
Publication Year :
2024

Abstract

The lack of traditional bioactivity in zirconia (ZrO 2) and limitations in the personalization capabilities of conventional manufacturing processes pose significant challenges for alveolar bone defect repair. This study aims to investigate whether ZrO 2 /CSi-Mgx scaffolds, produced by combining magnesium-doped calcium silicate (CSi–Mg) as a doping phase with ZrO 2 as the matrix, using projection-based 3D printing (3DPP) technology, exhibit favorable biocompatibility and mechanical properties at low sintering temperatures. The effect of CSi–Mg content (x%), pore structure and heating temperature on the strength of scaffolds were investigated systematically. Incorporation of CSi–Mg could readily adjust the sintering properties of the ZrO 2 scaffolds and the scaffolds with low (10–20 %) CSi–Mg possess much higher strength (74–92 MPa) after 1150 °C. Meanwhile, the ZrO 2 /CSi–Mg10 scaffolds with Triply periodic minimum surfaces (TPMS) pore structure had a compression strength of over 92 MPa and maintained a respectable strength (63 MPa) even after immersion in Tris buffer for 6 weeks. Concurrently, cellular experiments showed that incorporation of CSi–Mg could enhance cellular adhesion, proliferation, and migration of the ZrO 2 scaffolds and also promote the osteogenic property of the scaffolds. In conclusion, the ZrO 2 /CSi–Mg10 scaffold with TPMS pore structure showcases remarkable mechanical performance and bioactivity, holding the potential to facilitate in-situ bone regeneration within the alveolar bone. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
02728842
Volume :
50
Issue :
6
Database :
Academic Search Index
Journal :
Ceramics International
Publication Type :
Academic Journal
Accession number :
175411123
Full Text :
https://doi.org/10.1016/j.ceramint.2023.12.244