4.6 Article

Functionally Graded Scaffolds with Programmable Pore Size Distribution Based on Triply Periodic Minimal Surface Fabricated by Selective Laser Melting

Journal

MATERIALS
Volume 13, Issue 21, Pages -

Publisher

MDPI
DOI: 10.3390/ma13215046

Keywords

functionally graded scaffold; triply periodic minimal surfaces; programmable pore size distribution; mechanical property; selective laser melting

Funding

  1. National Natural Science Foundation of China [51805278, 12072167]
  2. National Natural Science Foundation of Zhejiang Province [LQ18E050004, LY18A020005]
  3. Natural Science Foundation of Ningbo [202003N4092]
  4. Fundamental Research Funds for the Provincial Universities of Zhejiang
  5. Key Laboratory of Impact and Safety Engineering (Ningbo University), Ministry of Education [202015]

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Functional graded materials are gaining increasing attention in tissue engineering (TE) due to their superior mechanical properties and high biocompatibility. Triply periodic minimal surface (TPMS) has the capability to produce smooth surfaces and interconnectivity, which are very essential for bone scaffolds. To further enhance the versatility of TPMS, a parametric design method for functionally graded scaffold (FGS) with programmable pore size distribution is proposed in this study. Combining the relative density and unit cell size, the effect of design parameters on the pore size was also considered to effectively govern the distribution of pores in generating FGS. We made use of Gyroid to generate different types of FGS, which were then fabricated using selective laser melting (SLM), followed by investigation and comparison of their structural characteristics and mechanical properties. Their morphological features could be effectively controlled, indicating that TPMS was an effective way to achieve functional gradients which had bone-mimicking architectures. In terms of mechanical performance, the proposed FGS could achieve similar mechanical response under compression tests compared to the reference FGS with the same range of density gradient. The proposed method with control over pore size allows for effectively generating porous scaffolds with tailored properties which are potentially adopted in various fields.

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