Achieving biomimetic porosity and strength of bone in magnesium scaffolds through binder jet additive manufacturing

被引:1
|
作者
Salehi, Mojtaba [1 ]
Kuah, Kai Xiang [2 ]
Prasadh, Somasundaram [3 ]
Li, Yuehua [3 ]
Zhang, Su Xia [1 ]
Seet, Hang Li [1 ]
Wong, Raymond Chung Wen [3 ]
Nai, Mui Ling Sharon [1 ]
机构
[1] ASTAR, Singapore Inst Mfg Technol SIMTech, Addit Mfg Div, 5 Cleantech Loop, Singapore 636732, Singapore
[2] Natl Univ Singapore, Dept Mat Sci & Engn, 9 Engn Dr 1, Singapore 117575, Singapore
[3] Natl Univ Singapore, Fac Dent, 9 Lower Kent Ridge Rd, Singapore 119085, Singapore
来源
BIOMATERIALS ADVANCES | 2025年 / 166卷
关键词
Magnesium; Additive manufacturing; Binder jetting; Porous structure; Bone; CORTICAL BONE; MECHANICAL-PROPERTIES; IN-VITRO; POROUS SCAFFOLDS; CORROSION; IMPLANTS; ALLOY; MICROSTRUCTURE; BIOMATERIALS; OPTIMIZATION;
D O I
10.1016/j.bioadv.2024.214059
中图分类号
TB3 [工程材料学]; R318.08 [生物材料学];
学科分类号
0805 ; 080501 ; 080502 ;
摘要
Magnesium (Mg) alloys are a promising candidate for synthetic bone tissue substitutes. In bone tissue engineering, achieving a balance between pore characteristics that facilitate biological functions and the essential stiffness required for load-bearing functions is extremely challenging. This study employs binder jet additive manufacturing to fabricate an interconnected porous structure in Mg alloys that mimics the microporosity and mechanical properties of human cortical bone types. Using scanning electron microscopy, micro-computed tomography, and mercury intrusion porosimetry, we found that the binder jet printed and sintered (BJPS) Mg-Zn-Zr alloys possess an interconnected porous structure, featuring an overall porosity of 13.3 %, a median pore size of 12.7 mu m, and pore interconnectivity exceeding 95 %. The BJPS Mg-Zn-Zr alloy demonstrated a tensile strength of 130 MPa, a yield strength of 100 MPa, an elastic modulus of 21.5 GPa, and an ultimate compressive strength of 349 MPa. These values align with the ranges observed in human bone types and outperform those of porous Mg alloys produced using the other conventional and additive manufacturing methods. Moreover, the BJPS Mg-Zn-Zr alloy showed level 0 cytotoxicity with a greater MC3T3-E1 cell viability, attachment, and proliferation when compared to a cast Mg-Zn-Zr counterpart, since the highly interconnected 3D porous structure provides cells with an additional dimension for infiltration. Finally, we provide evidence for the concept of using binder jet additive manufacturing for fabricating Mg implants tailored for applications in hard tissue engineering, including craniomaxillofacial procedures, bone fixation, and substitutes for bone grafts. The results of this study provide a solid foundation for future advancements in digital manufacturing of Mg alloys for biomedical applications.
引用
收藏
页数:16
相关论文
共 50 条
  • [41] Review on Engineering of Bone Scaffolds Using Conventional and Additive Manufacturing Technologies
    Mohammed, Abdullah
    Jimenez, Amaia
    Bidare, Prveen
    Elshaer, Amr
    Memic, Adnan
    Hassanin, Hany
    Essa, Khamis
    3D PRINTING AND ADDITIVE MANUFACTURING, 2024, 11 (04) : 1418 - 1440
  • [42] Additive manufacturing of biomorphic scaffolds for bone tissue engineering
    Fabrizia Caiazzo
    Vittorio Alfieri
    Brahim David Bujazha
    The International Journal of Advanced Manufacturing Technology, 2021, 113 : 2909 - 2923
  • [43] Additive manufacturing of multi-morphology graded titanium scaffolds f or bone implant applications
    Yu, Aihua
    Zhang, Ce
    Xu, Wei
    Zhang, Yun
    Tian, Shiwei
    Liu, Bowen
    Zhang, Jiazhen
    He, Anrui
    Su, Bo
    Lu, Xin
    JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY, 2023, 139 : 47 - 58
  • [44] Recent Trends and Challenges in Computer-Aided Design of Additive Manufacturing-based Biomimetic Scaffolds and Bioartificial Organs
    Yoo, Dong-Jin
    INTERNATIONAL JOURNAL OF PRECISION ENGINEERING AND MANUFACTURING, 2014, 15 (10) : 2205 - 2217
  • [45] Additive manufacturing of wet-spun polymeric scaffolds for bone tissue engineering
    Puppi, Dario
    Mota, Carlos
    Gazzarri, Matteo
    Dinucci, Dinuccio
    Gloria, Antonio
    Myrzabekova, Mairam
    Ambrosio, Luigi
    Chiellini, Federica
    BIOMEDICAL MICRODEVICES, 2012, 14 (06) : 1115 - 1127
  • [46] Impacts of process-induced porosity on material properties of copper made by binder jetting additive manufacturing
    Kumar, Ashwath Yegyan
    Wang, Jue
    Bai, Yun
    Huxtable, Scott T.
    Williams, Christopher B.
    MATERIALS & DESIGN, 2019, 182
  • [47] A laboratory-scale binder jet additive manufacturing testbed for process exploration and material development
    Daniel Oropeza
    A. John Hart
    The International Journal of Advanced Manufacturing Technology, 2021, 114 : 3459 - 3473
  • [48] A laboratory-scale binder jet additive manufacturing testbed for process exploration and material development
    Oropeza, Daniel
    Hart, A. John
    INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2021, 114 (11-12) : 3459 - 3473
  • [49] Microstructure evolution during binder jet additive manufacturing of H13 tool steel
    Nandwana, Peeyush
    Kannan, Rangasayee
    Siddel, Derek
    ADDITIVE MANUFACTURING, 2020, 36 (36)
  • [50] Additive manufacturing of star poly(ε-caprolactone) wet-spun scaffolds for bone tissue engineering applications
    Mota, Carlos
    Puppi, Dario
    Dinucci, Dinuccio
    Gazzarri, Matteo
    Chiellini, Federica
    JOURNAL OF BIOACTIVE AND COMPATIBLE POLYMERS, 2013, 28 (04) : 320 - 340