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Laser micro-polished stainless steel surfaces with improved bacteria removal capability

机译:激光微抛光不锈钢表面,提高了除菌能力

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Introduction: Laser micro-polishing is a process by which the surface finish of metals can be improved through a surface remelting phenomenon . In this process laser beam is scanned over the workpiece surface and the formed molten pool tends to redistribute around the area adjacent to surface asperities. This process allows controlling the surface morphology in micro and nano scales, which is a crucial aspect for bacteria adhesion, since the surface features are comparable to bacteria in size.In the meantime, the process can induce favourable changes in surface chemistry and wettability for avoiding bacterial adhesion . Materials and Methods: In this work the suitability of laser micro-polishing to produce stainless steel surfaces with a good microbial removal capability was evaluated. Cold rolled 0.3 mm in thick AISI 304 (initial Sa_r=85.3±2.8 nm) laser micro-polishing was applied with a ns-pulsed fibre laser, working under different gas atmospheres (ambient atmosphere, N_2 and Ar). The effects of different process parameters on surface roughness was investigated. A preliminary inspection allowed the definition of a polishing feasibility window and then polished surfaces were characterized in terms of average roughness (Sa_r) and waviness (Sa_w) through a focus variation microscope. On selected surfaces an escherichia coli assay was cultured and, after washing, adherent cells were counted with fluorescent techniques. Results and discussion: An improvement on surface finish, with smoothing and grain boundaries removal, was possible working under N_2 or Ar. A roughness reduction by about 60% (Sa_r =34.45 nm) was achieved. Five surfaces were selected: the most polished treated under N_2 and under Ar, two antithetical ones and the as received samples for bacterial adhesion tests. It was observed that a higher number of particles was retained in grain boundaries on as received samples compared laser micro-polished surfaces. In this way bacteria, which usually attach to the immediate vicinity of the already attached bacteria, formed clusters that was more difficult to be removed. Moreover these agglomerates in grain boundaries were protected from unfavourable environmental factors and shear stress of washing solution. Fig 1. Surface topography of a) bulk material, b) laser micro-polished surfaces (Image size 94.8 μm × 113.8 μm). Conclusions: The surface smoothing, induced by laser micro-polishing treatment, generated surfaces easier to clean in terms of bacterial adhesion and other possible contaminants. The surface finish also improved the visible aspect, rendering the laser micro-polished surfaces suitable for consumer products, for example kitchen utensils or furniture that are in contact with food.
机译:简介:激光微抛光是一种可以通过表面重熔现象改善金属表面光洁度的过程。在此过程中,激光束在工件表面上扫描,形成的熔池趋向于在与表面粗糙相邻的区域周围重新分布。该工艺可以控制微米和纳米级的表面形态,这是细菌粘附的关键方面,因为其表面特征可与细菌大小相提并论。与此同时,该工艺可以诱导表面化学性质和润湿性发生有利变化,从而避免细菌粘附。材料和方法:在这项工作中,对激光微抛光是否适合生产具有良好微生物去除能力的不锈钢表面进行了评估。使用ns脉冲光纤激光器在厚厚的AISI 304(初始Sa_r = 85.3±2.8 nm)中冷轧0.3 mm激光微抛光,并在不同的气体气氛(环境气氛,N_2和Ar)下工作。研究了不同工艺参数对表面粗糙度的影响。初步检查允许定义抛光可行性窗口,然后通过聚焦变化显微镜根据平均粗糙度(Sa_r)和波纹度(Sa_w)表征抛光表面。在选定的表面上培养大肠埃希氏菌,在洗涤后,用荧光技术对贴壁细胞进行计数。结果与讨论:在N_2或Ar下可以改善表面光洁度,并去除光滑和晶界。粗糙度降低了约60%(Sa_r = 34.45 nm)。选择了五个表面:在N_2和Ar下最抛光的表面,两个相对的表面以及作为细菌附着力测试的样品。观察到与激光微抛光表面相比,接收到的样品中有更多数量的颗粒保留在晶界上。以这种方式,通常附着在已经附着的细菌附近的细菌形成了更难以去除的簇。此外,保护了晶界中的这些附聚物免受不利的环境因素和洗涤溶液的剪切应力的影响。图1. a)块状材料的表面形貌,b)激光微抛光的表面(图像尺寸94.8μm×113.8μm)。结论:通过激光微抛光处理引起的表面光滑度,使产生的表面在细菌粘附和其他可能的污染物方面更易于清洁。表面光洁度还改善了可见的外观,使激光微抛光的表面适合于消费品,例如与食物接触的厨房用具或家具。

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