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Formation and Properties of Biomedical Ti-Ta Foams Prepared from Nanoprecursors by Thermal Dealloying Process

机译:纳米前驱体热脱合金法制备生物医用Ti-Ta泡沫的形成与性能

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摘要

The paper presents a promising method of preparation of titanium-based foams by the thermal dealloying method. The first step of this study was the Ti-Ta-Mg based nanopowder preparation using the mechanical alloying (MA) process performed at room temperature. The next step was forming the green compacts by cold pressing and then sintering with magnesium dealloying from the titanium-based alloy structure. The mechanism of the porous structure formation was based on the removal of magnesium from the titanium alloy at a temperature higher than the boiling point of magnesium (1090 °C). The influence of the Mg content on the formation of the porous Ti-30Ta foam has been investigated. The sintering stage was performed in vacuum. During the dealloying process, the magnesium atoms diffuse from the middle to the surface of the sample and combine to form vapors and then evaporate leaving pores surrounded by the metallic scaffold. The porosity, the mechanical properties as well as biocompatibility have been investigated. The titanium-based foam of high porosity (up to 76%) and the pore size distribution from nano- to micro-scale have been successfully prepared. For the medical applications, the Ti-Ta metallic foams have shown a positive behavior in the MTT test. The as-shown results clearly exhibit a great potential for thermal dealloying in the preparation of porous structures.
机译:本文提出了一种通过热脱合金法制备钛基泡沫塑料的有前途的方法。这项研究的第一步是使用在室温下进行的机械合金化(MA)工艺制备基于Ti-Ta-Mg的纳米粉。下一步是通过冷压形成生坯,然后用脱钛的钛基合金结构中的镁进行烧结。多孔结构形成的机理是基于在高于镁的沸点(1090℃)的温度下从钛合金中除去镁。已经研究了Mg含量对多孔Ti-30Ta泡沫形成的影响。烧结阶段在真空中进行。在脱合金过程中,镁原子从样品的中部扩散到表面并结合形成蒸气,然后蒸发,留下被金属支架包围的孔。已经研究了孔隙率,机械性能以及生物相容性。高孔隙率(高达76%)的钛基泡沫材料已经成功制备,孔径分布从纳米级到微米级。对于医疗应用,Ti-Ta金属泡沫在MTT测试中表现出良好的性能。所示结果清楚地显示出在制备多孔结构中进行热脱合金的巨大潜力。

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