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首页> 外文期刊>Journal of biomedical materials research. Part B, Applied biomaterials. >Fabrication and characterization of functionally graded nano-micro porous titanium surface by anodizing.
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Fabrication and characterization of functionally graded nano-micro porous titanium surface by anodizing.

机译:通过阳极氧化制备和表征功能梯度的纳米微孔钛表面。

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The purpose of this study was to fabricate and characterize nanotubular structure on machined titanium (MA) and resorbable blast media (RBM) treated titanium by anodizing. The anodized MA and RBM were characterized with scanning electron microscopy, transmission electron microscopy, X-ray diffraction, energy disperse spectra, X-ray photoelectron spectra, and nano-indentation and scratch test. Highly ordered nanotubular layers of individually 100 nm in diameter and 500 nm in length approximately were formed regardless of the substrates. The nanotubular layers consisted mainly of amorphous TiO(2) with trace fluorine. The nanotubular surfaces on both the substrates significantly reduced water contact angles and elastic modulus compared with those prior to anodizing. The anodizing treatment significantly increased the surface roughness of the smooth MA, but significantly decreased the surface roughness of the roughened RBM. The critical delamination forces of the nanotubular layer were not obtained due to the limitation of surface roughness. The anodized RBM consisted of a nano-micro porous graded structure, or a nanotubular amorphous fluoride containing TiO(2) layer on top of micro-roughened titanium surface, which is expected to significantly improve the surface area that can be used to deliver drugs and growth factors and alleviate the interfacial elastic modulus mismatch as to enhance osseointegration when compared with conventional dental and orthopedic implant devices with smooth or acid etched surface.
机译:这项研究的目的是通过阳极氧化在机械加工的钛(MA)和可吸收爆炸介质(RBM)处理的钛上制造和表征纳米管结构。阳极氧化的MA和RBM通过扫描电子显微镜,透射电子显微镜,X射线衍射,能量分散谱,X射线光电子谱以及纳米压痕和划痕测试进行表征。不论基板如何,都形成了直径分别为100 nm,长度约为500 nm的高度有序的纳米管层。纳米管层主要由具有微量氟的无定形TiO(2)组成。与阳极氧化之前相比,两个基板上的纳米管表面均显着降低了水接触角和弹性模量。阳极氧化处理显着增加了光滑MA的表面粗糙度,但显着降低了粗糙化RBM的表面粗糙度。由于表面粗糙度的限制,没有获得纳米管层的临界分层力。阳极氧化RBM由纳米微孔渐变结构或在微粗糙钛表面上包含TiO(2)层的纳米管无定形氟化物组成,有望显着提高可用于输送药物和与具有光滑或酸蚀表面的常规牙科和整形外科植入设备相比,可增加生长因子并减轻界面弹性模量失配,从而增强骨整合。

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