Genomics Research Center, Academia Sinica, Taipei, Taiwan.
Hierarchical Green-Energy Materials (Hi-GEM) Research Center, Department of Material Science and Engineering, National Cheng Kung University, No. 1, University Road, Tainan, Taiwan.
Sci Rep. 2020 Jun 30;10(1):10602. doi: 10.1038/s41598-020-67332-8.
A strontium (Sr)-doped hydroxyapatite-like coating was deposited on α-Ti alloy via the growing integration layer (GIL) method at various applied voltages. We added 0.03 M strontium hydroxide (Sr(OH)·8HO) to a solution containing calcium acetate and sodium dihydrogen phosphate to produce Sr-doped hydroxyapatite (Sr-HA) coatings. The scanning electron microscope (SEM) images of these coatings showed that all various features, such as average pore size, coating thickness, micro-hardness, and roughness, were similar to those of HA. As the voltage increased from 250 to 300 V, the amount of micro cracks decreased, and there were eliminated at 350 V. The SEM images also showed that the Sr-HA coatings were closely integrated with the alloy: without any gaps between the oxide layers and the alloy. In addition, energy-dispersive X-ray spectroscopy verified the Sr integration from the bottom up. X-ray diffraction patterns confirmed Sr-HA formation instead of calcium phosphate, even at the lowest voltage of 250 V. The value of E increased by 6.6% after raising the voltage from 250 to 350 V. The electrochemical impedance spectroscopy analysis confirmed that the adequate corrosion resistance of Sr-HA coatings, especially at the highest voltage of 350 V. In addition, the GIL treatment increased the layer resistance measured by R/R Optimally, the GIL method used the highest voltage of 350 V to produce higher quality of Sr-HA-rich coatings.
通过生长整合层(GIL)方法在不同应用电压下在α-Ti 合金上沉积掺锶羟基磷灰石样涂层。我们在含有醋酸钙和磷酸二氢钠的溶液中添加 0.03 M 氢氧化锶(Sr(OH)·8HO)来制备掺锶羟基磷灰石(Sr-HA)涂层。这些涂层的扫描电子显微镜(SEM)图像表明,各种特征,如平均孔径、涂层厚度、显微硬度和粗糙度,均与 HA 相似。随着电压从 250 增加到 300 V,微裂纹的数量减少,在 350 V 时消除。SEM 图像还表明,Sr-HA 涂层与合金紧密结合:氧化物层和合金之间没有任何间隙。此外,能谱仪(EDS)验证了 Sr 的整合是从下往上进行的。X 射线衍射(XRD)图谱证实了 Sr-HA 的形成,即使在最低电压 250 V 时也是如此。将电压从 250 提高到 350 V 后,E 值增加了 6.6%。电化学阻抗谱(EIS)分析证实了 Sr-HA 涂层具有足够的耐腐蚀性,尤其是在最高电压 350 V 时。此外,GIL 处理增加了由 R/R Optimally 测量的层电阻,GIL 方法使用最高电压 350 V 来产生更高质量的富含 Sr-HA 的涂层。