激光等离子体驱动冲击波处理氧化锆陶瓷的生物相容性和表面完整性

P. Shukla, Vincent Zhang, Xiaojun Shen, Victor Villapun, S. Cox, Phillip Swanson
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摘要

这是一篇多学科的论文,重点介绍了激光冲击处理(LST)对ZrO2陶瓷的初步结果。这项工作对几个工业部门的部件具有重要意义,这些部件将从加强中受益。这些组件分别是:牙种植体;切割、拉丝工具;阀门、轴承、压力容器、热交换器以及高性能剪刀和刀具,在这些领域,对硬脆材料(如ZrO2)进行改性可以提高性能。为了阐明LST对ZrO2陶瓷的影响,使用了Nd: YAG激光器,在532 nm波长下,激光能量分别为17 mJ、85 mJ和170 mJ,光斑尺寸为2 mm,脉冲重复频率为5 Hz,脉冲持续时间为10 ns。对ZrO2陶瓷表面完整性的研究表明,当激光能量从85 mJ增加到170 mJ时,ZrO2陶瓷表面从无裂纹拓扑结构转变为以裂纹为主的表面结构。增量钻孔法获得的残余应力在表层和次表层均为拉伸应力。然而,在LST后,ZrO2陶瓷的亚表面至350µm深度处发现了-595 MPa的压缩,特别是在横向上。生物分析代谢活性测量表明,随着接触时间的增加(24小时,3天和7天),所有样品的活性都有所增加。接收表面的代谢变化较为有限,在前3天保持相似的生化水平,然后在培养一周后略有增加,使所有LST表面的活性相对于接收条件显着增加。这表明ZrO2 LST表现出增强的细胞反应,特别是在接触时间7天后。这篇介绍性论文的总体结果不仅表明ZrO2陶瓷可以经过激光冲击处理/强化,诱导一些可能有益的机械和物理效应、微观结构和表面形貌的变化,而且表明LST可以促进细胞对ZrO2陶瓷的反应的改善。这为ZrO2基陶瓷的生物应用开辟了新的前景,如牙齿种植螺钉,避免机械载荷造成的骨折,增强强度,以及生物相容性都很重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Biocompatibility and Surface Integrity of Zirconia Ceramics Treated by Laser-plasma Driven Shock-waves
This is a multi-disciplinary paper focused on the preliminary results of deploying laser shock treatment (LST) to ZrO2 ceramics. This work has significance in several industrial sectors for components that will benefit from strengthening. These components are, namely: dental implants; cutting and drawing tools; valves, bearings, pressure vessels, heat exchangers and high-performance scissors and knives, where modification of hard, brittle materials properties such as that of a ZrO2, can yield a performance boost. To elucidate the influence of LST on ZrO2 ceramics, an Nd: YAG laser was used, exhibiting (operating at discrete) laser energies of 17 mJ, 85 mJ and 170 mJ, a 2 mm spot size, a pulse repetition rate of 5 Hz and pulse duration of 10 ns was deployed at 532 nm wavelength. Investigation of ZrO2 ceramic surface integrity revealed a transition from a crack-free topology to a surface dominated by fractures, as the laser energy increased from 85 mJ to 170 mJ. Residual stresses obtained by incremental hole drilling (IHD) were measured to be tensile in the upper layer and the sub-surface layer. However, compression of -595 MPa was found in the sub-surface of the ZrO2 ceramic to a depth of 350 µm after LST, particularly in the transverse direction. Biological analysis metabolic activity measurements, indicated a rise in activity for all samples as the contact time increased (24 h, 3 d and 7 d). The as-received surface revealed a more limited change in metabolism, retaining similar biochemical levels during the first 3 days followed by a slight increase after a week of cultivation, bringing about significant increase in activity in all LST surfaces, relative to the as-received condition. This suggested that a ZrO2 LST exhibited enhanced cell response, particularly, after 7 days of contact-time. The overall outcome of this introductory paper, not only showed that ZrO2 ceramics, can be laser shock treated/peened, to induce some possible beneficial mechanical and physical effects, microstructural and surface topography changes, but also showed that LST can facilitate improvement in cell response to the ZrO2 ceramic. This opens-up, new prospects for treatment of ZrO2 based ceramics for biological applications such as tooth implant screws, where avoiding fractures from mechanical loading, strength enhancement, as well as biocompatibility are all important.
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