Nd: Yag激光脉冲增强钛的生物活性

Mitra Radmanesh, Amirkianoosh Kiani
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引用次数: 15

摘要

目的研究激光功率和停留时间等激光特性对钛表面形貌和氧化的影响,以提高激光织构钛片的生物活性。方法采用纳秒脉冲辐照钛样品,在特定的激光参数下在样品片表面形成预定的点状图案。通过模拟体液(SBF)评估处理后样品的最终生物活性,然后使用x射线衍射(XRD)和能量色散(EDX)等材料表征技术。结果观察到,在一定的停留时间和不同的功率下,通过增加钛表面粗糙度,可以得到在微/亚微尺度上具有较高表面能的钛。激光的使用导致一步热量增加和钛的氧化,从而产生具有更高细胞粘附能力的钛。结论材料表面粗糙度、表面形貌和氧化水平的变化对细胞与钛表面的粘附率有直接影响。在分析完成后,得出的结论是,使用较高的功率和较短的停留时间比使用较高的停留时间和较低的功率能更好地提高生物活性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Bioactivity Enhancement of Titanium Induced by Nd: Yag Laser Pulses
Purpose In this research, the effect of laser properties such as laser power and laser dwell time on the surface morphology and oxidizing of titanium have been investigated in order to enhance the bioactivity of laser textured titanium sheets. Methods The Ti samples were irradiated with nanosecond pulses to create the predetermined point patterns on the surface of sample sheets with specific laser parameters. Final bioactivity of the treated samples were evaluated through the use of simulated body fluid (SBF), followed by material characterization techniques such as X-ray diffraction (XRD) and energy dispersive (EDX). Results It was observed that by increasing the roughness of the titanium surface samples using a range of dwelling time, and with different powers, titania with higher levels of surface energy in micro/sub-micro scales are produced. The use of laser results in a one-step heat increase and the oxidation of titanium, which results in creation of titania with higher cell adhesion abilities. Conclusions It was concluded that the variation of the surface roughness, surface morphology, and oxidation level of the material has a direct effect on the cell adhesion rate to the surface of the titanium. Upon completion of the analysis, it is concluded that using a higher power and a lower dwelling time results in better bioactivity improvement than using higher dwelling times and lower powers.
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来源期刊
Journal of Applied Biomaterials & Biomechanics
Journal of Applied Biomaterials & Biomechanics 生物-材料科学:生物材料
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