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首页> 外文期刊>Materials science & engineering >Fabrication of Ti + Mg composites by three-dimensional printing of porous Ti and subsequent pressureless infiltration of biodegradable Mg
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Fabrication of Ti + Mg composites by three-dimensional printing of porous Ti and subsequent pressureless infiltration of biodegradable Mg

机译:通过三维印刷多孔Ti并随后无压力渗透可生物降解的Mg制备Ti + Mg复合材料

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A semi-degradable Ti + Mg composite with superior compression and cytotoxicity properties have been successfully fabricated using ink jet 3D printing followed by capillary mediated pressureless infiltration technique targeting orthopaedic implant applications. The composite exhibited low modulus (similar to 5.2 GPa) and high ultimate compressive strength (similar to 418 MPa) properties matching that of the human cortical bone. Ti + Mg composites with stronger 3D interconnected open-porous Ti networks are possible to be fabricated via 3D printing. Corrosion rate of samples measured through immersion testing using 0.9%NaCl solution at 37 degrees C indicate almost negligible corrosion rate for porous Ti (similar to 1.14 mu m/year) and < 1 mm/year for Ti + Mg composites for 5 days of immersion, respectively. The composite significantly increased the SAOS-2 osteoblastic bone cell proliferation rate when compared to the 3D printed porous Ti samples and the increase is attributed to the exogenous Mg2+ ions originating from the Ti + Mg samples. The cell viability results indicated absent to mild cytotoxicity. An attempt is made to discuss the key considerations for net-shape fabrication of Ti + Mg implants using ink jet 3D printing followed by infiltration approach.
机译:使用喷墨3D打印以及针对骨科植入物应用的毛细管介导的无压浸润技术,已经成功地制造了具有优异压缩和细胞毒性特性的半降解Ti + Mg复合材料。该复合材料显示出低模量(约5.2 GPa)和高极限抗压强度(约418 MPa),与人类皮质骨相匹配。具有更强3D互连开孔Ti网络的Ti + Mg复合材料可以通过3D打印来制造。使用0.9%NaCl溶液在37摄氏度下通过浸没测试测得的样品腐蚀速率表明,浸入5天后,多孔Ti(大约1.14微米/年)的腐蚀速率几乎可以忽略不计,而Ti + Mg复合材料的腐蚀速率几乎不到1毫米/年。 , 分别。与3D打印的多孔Ti样品相比,该复合材料显着提高了SAOS-2成骨细胞的增殖速率,并且这种增加归因于源自Ti + Mg样品的外源Mg2 +离子。细胞活力结果表明没有轻度的细胞毒性。试图讨论使用喷墨3D打印和渗透法对Ti + Mg植入物进行网状制造的关键考虑因素。

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