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首页> 外文期刊>Applied Surface Science >Phosphate bioglass thin-films: Cross-area uniformity, structure and biological performance tailored by the simple modification of magnetron sputtering gas pressure
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Phosphate bioglass thin-films: Cross-area uniformity, structure and biological performance tailored by the simple modification of magnetron sputtering gas pressure

机译:磷酸盐生物胶薄膜:通过简单改变磁控溅射气体压力来定制的跨面积均匀性,结构和生物学性能

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摘要

Currently, there is a considerable time-lag in the industrialisation of innovative technological solutions for the functionalization of osseous implants, with ever-demanding healthcare requirements (e.g., controlled release of therapeutic ions, match of biomaterial degradation - bone growth rates, antimicrobial efficiency). As third-generation biomaterials, phosphate bio-glasses (PBGs) have demonstrated an ability to stimulate specific biological responses from tissue to molecular level, by successfully coupling bioactive and resorbable material properties. Here, radio-frequency magnetron sputtered (RF-MS) PBGs were explored as sacrificial resorbable layers for prospective biomedical implant designs. A PBG powder with a 50-P2O5, 35-CaO, 10-Na2O and 5-Fe2O3 composition (mol%) was used as source (target) material. The influence of the argon working pressure (0.2-1 Pa) - one of the most prominent RF-MS variables - on the morphology, structure, uniformity, composition, degradation rate and cytocompatibility of PBG films was investigated. The engineered modification of physical-chemical and biological features of the PBG sputtered films was multi-parametrically surveyed by AFM, EDXS, spectroscopic ellipsometry, GIXRD, FTIR spectroscopy measurements and in vitro assays. Results suggested that the film thickness, composition, density and structure were preserved over a uniformity region having a diameter of similar to 30 mm, irrespective of sputtering pressure. The network connectivity and the surface porosity of the films were found to have antagonistic roles with respect to the in vitro degradation performance. The possibility of fine tuning the composition, structure and thereby biological interaction of the PBG films by conveniently modifying the sputtering pressure was shown (i.e., permitting their complete controlled degradation, without cytotoxic effects). This work is the first to show in vitro cytocompatibility outcomes of sputtered PBG films and their cross-area uniformity, and thus, it could prove to be an important technological step in their future biomedical application and suggest implications for future industrial scale-up.
机译:目前,具有相当长的时间滞后,在骨质植入物功能化的创新技术解决方案的工业化方面存在相当多的时间滞后,具有急需的医疗保健要求(例如,治疗离子的控制释放,生物材料降解 - 骨生长速率,抗菌效率) 。作为第三代生物材料,通过成功地偶联生物活性和可再吸收的材料特性,磷酸盐生物眼镜(PBGS)已经证明了刺激从组织到分子水平的特异性生物反应的能力。这里,透射频率磁控管溅射(RF-MS)PBG被探索为前瞻性生物医学植入物设计的牺牲可再吸收层。用50-P2O5,35-CaO,10-Na 2 O和5-Fe 2 O 3组合物(Mol%)的PBG粉末用作源(靶)材料。研究了氩气工作压力(0.2-1Pa) - 最突出的RF-MS变量之一 - 对PBG薄膜的形态,结构,均匀性,组成,降解率和细胞相容性进行了研究。 PBG溅射膜的物理化学和生物学特征的工程化修饰是通过AFM,EDX,光谱椭偏测量,GixRD,FTIR光谱测量和体外测定的多参数测量。结果表明,无论溅射压力如何,在直径与30mm的直径相似的均匀区域上保留了膜厚度,组成,密度和结构。发现膜的网络连接和表面孔隙率相对于体外降解性能具有拮抗作用。通过方便地改变溅射压力,微调组合物,结构和由此通过方便地改变溅射压力的生物相互作用的可能性(即,允许其完全受控的降解,没有细胞毒性效应)。这项工作是第一个显示溅射的PBG薄膜的体外细胞势能结果及其横向面积均匀性,因此可以证明是其未来的生物医学应用中的重要技术步骤,并提出对未来工业扩展的影响。

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