Surmeneva M A, Tyurin A I, Mukhametkaliyev T M, Pirozhkova T S, Shuvarin I A, Syrtanov M S, Surmenev R A
Department of Theoretical and Experimental Physics, National Research Tomsk Polytechnic University, 634050 Tomsk, Russia.
NanoCenter "Nanotechnology and Nanomaterials", G.R. Derzhavin Tambov State University, 392000 Tambov, Russia.
J Mech Behav Biomed Mater. 2015 Jun;46:127-36. doi: 10.1016/j.jmbbm.2015.02.025. Epub 2015 Mar 3.
The structure, composition and morphology of a radio-frequency (RF) magnetron sputter-deposited dense nano-hydroxyapatite (HA) coating that was deposited on the surface of an AZ31 magnesium alloy were characterized using AFM, SEM, EDX and XRD. The results obtained from SEM and XRD experiments revealed that the bias applied during the deposition of the HA coating resulted in a decrease in the grain and crystallite size of the film having a crucial role in enhancing the mechanical properties of the fabricated biocomposites. A maximum hardness of 9.04 GPa was found for the HA coating, which was prepared using a bias of -50 V. The hardness of the HA film deposited on the grounded substrate (GS) was found to be 4.9 GPa. The elastic strain to failure (H/E) and the plastic deformation resistance (H(3)/E(2)) for an indentation depth of 50 nm for the HA coating fabricated at a bias of -50 V was found to increase by ~30% and ~74%, respectively, compared with the coating deposited at the GS holder. The nanoindentation tests demonstrated that all of the HA coatings increased the surface hardness on both the microscale and the nanoscale. Therefore, the results revealed that the films deposited on the surface of the AZ31 magnesium alloy at a negative substrate bias can significantly enhance the wear resistance of this resorbable alloy.
利用原子力显微镜(AFM)、扫描电子显微镜(SEM)、能谱仪(EDX)和X射线衍射仪(XRD)对射频(RF)磁控溅射沉积在AZ31镁合金表面的致密纳米羟基磷灰石(HA)涂层的结构、成分和形态进行了表征。SEM和XRD实验结果表明,在HA涂层沉积过程中施加的偏压导致薄膜的晶粒和微晶尺寸减小,这对提高所制备生物复合材料的力学性能起着关键作用。发现使用-50 V偏压制备的HA涂层的最大硬度为9.04 GPa。发现在接地衬底(GS)上沉积的HA薄膜的硬度为4.9 GPa。与在GS支架上沉积的涂层相比,在-50 V偏压下制备的HA涂层在50 nm压痕深度下的弹性失效应变(H/E)和抗塑性变形能力(H(3)/E(2))分别提高了约30%和约74%。纳米压痕测试表明,所有HA涂层都提高了微观和纳米尺度上的表面硬度。因此,结果表明在负衬底偏压下沉积在AZ31镁合金表面的薄膜可以显著提高这种可吸收合金的耐磨性。