Wood Jonathan, Bright Richard, Palms Dennis, Barker Dan, Vasilev Krasimir
Future Industries Institute, University of South Australia, Mawson Lakes, SA 5095, Australia.
College of Medicine and Public Health, Flinders University, Bedford Park, SA 5042, Australia.
Nanomaterials (Basel). 2024 Jan 24;14(3):253. doi: 10.3390/nano14030253.
The atomic force microscope is a versatile tool for assessing the topography, friction, and roughness of a broad spectrum of surfaces, encompassing anti-bacterial nanostructure arrays. Measuring and comparing all these values with one instrument allows clear comparisons of many nanomechanical reactions and anomalies. Increasing nano-Newton-level forces through the cantilever tip allows for the testing and measuring of failure points, damage behavior, and functionality under unfavorable conditions. Subjecting a grade 5 titanium alloy to hydrothermally etched nanostructures while applying elevated cantilever tip forces resulted in the observation of irreversible damage through atomic force microscopy. Despite the damage, a rough and non-uniform morphology remained that may still allow it to perform in its intended application as an anti-bacterial implant surface. Utilizing an atomic force microscope enables the evaluation of these surfaces before their biomedical application.
原子力显微镜是一种多功能工具,可用于评估包括抗菌纳米结构阵列在内的广泛表面的形貌、摩擦力和粗糙度。使用一台仪器测量和比较所有这些值,可以清晰地比较许多纳米力学反应和异常情况。通过悬臂尖端增加纳牛顿级别的力,可以在不利条件下测试和测量失效点、损伤行为及功能。对5级钛合金进行水热蚀刻纳米结构处理,并施加较高的悬臂尖端力,通过原子力显微镜观察到了不可逆损伤。尽管出现了损伤,但仍保留了粗糙且不均匀的形态,这可能仍使其能够作为抗菌植入物表面在预期应用中发挥作用。利用原子力显微镜能够在这些表面用于生物医学应用之前对其进行评估。