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首页> 外文期刊>Analytical and bioanalytical chemistry >Advanced surface characterization of silver nanocluster segregation in Ag-TiCN bioactive coatings by RBS, GDOES, and ARXPS
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Advanced surface characterization of silver nanocluster segregation in Ag-TiCN bioactive coatings by RBS, GDOES, and ARXPS

机译:通过RBS,GDOES和ARXPS对Ag-TiCN生物活性涂层中的银纳米团簇分离进行先进的表面表征

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Surface modification by means of wear protective and antibacterial coatings represents, nowadays, a crucial challenge in the biomaterials field in order to enhance the lifetime of bio-devices. It is possible to tailor the properties of the material by using an appropriate combination of high wear resistance (e.g., nitride or carbide coatings) and biocide agents (e.g., noble metals as silver) to fulfill its final application. This behavior is controlled at last by the outmost surface of the coating. Therefore, the analytical characterization of these new materials requires high-resolution analytical techniques able to provide information about surface and depth composition down to the nanometric level. Among these techniques are Rutherford backscattering spectrometry (RBS), glow discharge optical emission spectroscopy (GDOES), and angle resolved X-ray photoelectron spectroscopy (ARXPS). In this work, we present a comparative RBS-GDOES-ARXPS study of the surface characterization of Ag-TiCN coatings with Ag/Ti atomic ratios varying from 0 to 1.49, deposited at room temperature and 200 C. RBS analysis allowed a precise quantification of the silver content along the coating with a non-uniform Ag depth distribution for the samples with higher Ag content. GDOES surface profiling revealed that the samples with higher Ag content as well as the samples deposited at 200 C showed an ultrathin (1-10 nm) Ag-rich layer on the coating surface followed by a silver depletion zone (20-30 nm), being the thickness of both layers enhanced with Ag content and deposition temperature. ARXPS analysis confirmed these observations after applying general algorithm involving regularization in addition to singular value decomposition techniques to obtain the concentration depth profiles. Finally, ARXPS measurements were used to provide further information on the surface morphology of the samples obtaining an excellent agreement with SEM observations when a growth model of silver islands with a height d = 1.5 nm and coverage θ = 0.20 was applied to the sample with Ag/Ti = 1.49 and deposited at room temperature. [Figure not available: see fulltext.]
机译:如今,通过耐磨和抗菌涂层进行表面改性是生物材料领域中至关重要的挑战,以延长生物设备的使用寿命。通过使用高耐磨性(例如,氮化物或碳化物涂层)和杀生物剂(例如,贵金属如银)的适当组合来调整材料的性能,以实现其最终应用。该行为最后由涂层的最外表面控制。因此,这些新材料的分析表征需要高分辨率的分析技术,这些技术必须能够提供有关纳米级表面和深度成分的信息。这些技术包括卢瑟福背散射光谱(RBS),辉光放电光发射光谱(GDOES)和角分辨X射线光电子能谱(ARXPS)。在这项工作中,我们提供了一个比较性的RBS-GDOES-ARXPS研究,研究了在室温和200 C下沉积的Ag / Ti原子比在0到1.49之间变化的Ag-TiCN涂层的表面特性。RBS分析可以精确定量对于含银量较高的样品,沿镀层的银含量具有不均匀的银深度分布。 GDOES表面分析表明,具有较高Ag含量的样品以及在200 C下沉积的样品在涂层表面均显示出超薄(1-10 nm)富Ag层,其后是银耗尽区(20-30 nm),随着Ag含量和沉积温度的增加,两层的厚度增加。 ARXPS分析在应用了除奇异值分解技术之外的涉及正则化的通用算法以获得浓度深度剖面后,证实了这些观察结果。最后,当将具有d = 1.5 nm高度和覆盖角θ= 0.20的银岛生长模型应用于含Ag的样品时,使用ARXPS测量可提供有关样品表面形态的更多信息,从而与SEM观察获得极好的一致性。 / Ti = 1.49并在室温下沉积。 [图不可用:请参见全文。]

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