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首页> 外文期刊>Materials >Deposition of Ultrathin Nano-Hydroxyapatite Films on Laser Micro-Textured Titanium Surfaces to Prepare a Multiscale Surface Topography for Improved Surface Wettability/Energy
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Deposition of Ultrathin Nano-Hydroxyapatite Films on Laser Micro-Textured Titanium Surfaces to Prepare a Multiscale Surface Topography for Improved Surface Wettability/Energy

机译:激光微织纹理钛表面上超薄纳米羟基磷灰石膜沉积,制备多尺度表面形貌,以改善表面润湿性/能量

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The primary aim of this study was to analyse the correlation between topographical features and chemical composition with the changes in wettability and the surface free energy of microstructured titanium (Ti) surfaces. Periodic microscale structures on the surface of Ti substrates were fabricated via direct laser interference patterning (DLIP). Radio-frequency magnetron sputter deposition of ultrathin nanostructured hydroxyapatite (HA) films was used to form an additional nanoscale grain morphology on the microscale-structured Ti surfaces to generate multiscale surface structures. The surface characteristics were evaluated using atomic force microscopy and contact angle and surface free energy measurements. The structure and phase composition of the HA films were investigated using X-ray diffraction. The HA-coated periodic microscale structured Ti substrates exhibited a significantly lower water contact angle and a larger surface free energy compared with the uncoated Ti substrates. Control over the wettability and surface free energy was achieved using Ti substrates structured via the DLIP technique followed by the deposition of a nanostructured HA coating, which resulted in the changes in surface chemistry and the formation of multiscale surface topography on the nano- and microscale.
机译:本研究的主要目的是分析地形特征与化学成分之间的相关性与微结构化钛(Ti)表面的润湿性和表面自由能的变化。通过直接激光干扰图案化(DLIP)制造Ti基板表面上的周期性微观结构。超薄纳米结构羟基磷灰石(HA)薄膜的射频磁控溅射沉积在微观结构的Ti表面上形成额外的纳米级晶粒形态,以产生多尺度表面结构。使用原子力显微镜和接触角和表面自由能量测量来评估表面特性。使用X射线衍射研究了HA膜的结构和相组合物。与未涂覆的Ti衬底相比,HA涂覆的周期性微观结构化Ti基板表现出显着降低的水接触角和更大的表面自由能。使用通过DLIP技术的TI基材进行润湿性和表面自由能量,然后通过DLIP技术进行沉积,然后纳米结构的HA涂层沉积,这导致表面化学的变化和纳米和微尺寸对多尺度表面形貌的变化。

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