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首页> 外文期刊>Transactions of the ASABE >Technical Note:Nanoporous Stainless Steel Surfaces for Anti-Bacterial Adhesion Performances
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Technical Note:Nanoporous Stainless Steel Surfaces for Anti-Bacterial Adhesion Performances

机译:技术说明:纳米多孔不锈钢表面用于抗菌粘附性能

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Stainless steel is one of the most widely used metals for food industry applications. Cavities and crevices on its surface are able to accommodate bacteria that can evade bactericidal activity. Therefore, the evaluation of electropolishing and anodizing treatments for anti-biofouling performance on stainless steel surfaces was carried out in this study. Plates of 316L stainless steel were electropolished to make nanosmooth surfaces in a mixture solution of phosphoric acid and sulfuric acid at 3.5 V at 80°C for 10 min. These samples were anodized in an anhydrous ethylene glycol solution containing perchloric acid to achieve nanoporous surfaces with diameters of 50 and 80 nm after being treated with 40 Vfor 10 min and 50 V for 35 min, respectively. Field emission scanning electron microscope and atomic force microscope images showed that the surface topographies of the stainless steel were strongly manipulated by the surface treatments. The populations of bacterial cells adhered to the nanosmooth, 50 nm nanoporous, and 80 nm nanoporous surfaces of stainless steel were 3.7, 1.7, and 1.5 log CFU cm'2, respectively. Nanoporous surfaces on stainless steel showed a significant repellency o/Listeria monocytogenes as compared to nanosmooth stainless steel(p < 0.05). The results suggest that nanoporous characteristics on stainless steel surface have a great potential for biofilm prevention in food industries.
机译:不锈钢是食品工业应用最广泛使用的金属之一。其表面上的空腔和裂缝能够容纳可以避毒杀菌活性的细菌。因此,在本研究中进行了在不锈钢表面上进行抗生物污垢性能的电解和阳极氧化处理的评价。将316L不锈钢的板电极化解在3.5V的80℃下在3.5V的磷酸和硫酸的混合溶液中制造纳米形表面10分钟。将这些样品在含有高氯酸的无水乙二醇溶液中阳极氧化,以在用40V即至10分钟和50V的35分钟处理后,在50 V即至50 v的情况下实现直径为50和80nm的纳米多孔表面。场发射扫描电子显微镜和原子力显微镜图像显示不锈钢的表面地形被表面处理强烈操纵。粘附在纳米球窗,50nm纳米孔和80nm的不锈钢纳米孔表面的细菌细胞的群体分别为3.7,1.7和1.5对数Cfu cm'2。与纳米型不锈钢相比,不锈钢上的纳米孔表面显示出显着的排斥性O / Histeria单核细胞元(P <0.05)。结果表明,不锈钢表面的纳米多孔特性具有巨大的食品工业生物膜预防潜力。

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