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Porous Calcium Phosphate Ceramic Scaffolds with Tailored Pore Orientations and Mechanical Properties Using Lithography-Based Ceramic 3D Printing Technique

Authors
Lee, Jung-BinMaeng, Woo-YoulKoh, Young-HagKim, Hyoun-Ee
Issue Date
9월-2018
Publisher
MDPI
Keywords
additive manufacturing; 3D printing; photocuring; porous ceramics
Citation
MATERIALS, v.11, no.9
Indexed
SCIE
SCOPUS
Journal Title
MATERIALS
Volume
11
Number
9
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/73277
DOI
10.3390/ma11091711
ISSN
1996-1944
Abstract
This study demonstrates the usefulness of the lithography-based ceramic 3-dimensional printing technique with a specifically designed top-down process for the production of porous calcium phosphate (CaP) ceramic scaffolds with tailored pore orientations and mechanical properties. The processing parameters including the preparation of a photocurable CaP slurry with a high solid loading (phi = 45 vol%), the exposure time for photocuring process, and the initial designs of the porous scaffolds were carefully controlled. Three types of porous CaP scaffolds with different pore orientations (i.e., 0 degrees/90 degrees, 0 degrees/45 degrees/90 degrees/135 degrees, and 0 degrees/30 degrees/60 degrees/90 degrees/120 degrees/150 degrees) were produced. All the scaffolds exhibited a tightly controlled porous structure with straight CaP frameworks arranged in a periodic pattern while the porosity was kept constant. The porous CaP scaffold with a pore orientation of 0 degrees/90 degrees demonstrated the highest compressive strength and modulus due to a number of CaP frameworks parallel to the loading direction. On the other hand, scaffolds with multiple pore orientations may exhibit more isotropic mechanical properties regardless of the loading directions. The porous CaP scaffolds exhibited an excellent in vitro apatite-forming ability in a stimulated body fluid (SBF) solution. These findings suggest that porous CaP scaffolds with tailored pore orientations may provide tunable mechanical properties with good bone regeneration ability.
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