316L Stainless Steel Sensitization in Carbon Nanotube CVD Growth for Bacterial Resistance

Sterling Voss, Bret Mecham, L. Bowden, J. Monroe, A. Bowden, B. Jensen
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Abstract

Physically altering the micro-topography of a surface can dramatically affect its capacity to support or prevent biofilm growth. Growing carbon-infiltrated carbon nanotubes on biomedical materials is one such approach which has proven effective. Unfortunately, the high temperature and carbon-rich gas exposure required for this procedure has proven to have deleterious effects. This paper proposes a kinetic model to explain the rusting phenomenon observed on 316L stainless steel substrates which have undergone the chemical vapor deposition process to grow carbon-infiltrated carbon nanotubes. The model is derived from Fick’s Second Law, and predicts the growth of chromium carbide as a function of temperature and time. Chromium carbide formation is shown to be the mechanism of corrosion, as chromium atoms are leeched from the the matrix, preventing the formation of a passivating chromium oxide layer in place of problematic iron oxide (rust) formation. The model is validated using experimental methods, which involve immersion in bacteria culture, scanning electron microscopy (SEM), and energy dispersive X-ray spectroscopy (EDX).
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316L不锈钢在碳纳米管CVD生长中的增敏性对细菌耐药性的影响
物理改变表面的微地形可以显著影响其支持或阻止生物膜生长的能力。在生物医学材料上生长碳渗透碳纳米管就是这样一种被证明有效的方法。不幸的是,这一过程所需要的高温和富含碳的气体暴露已被证明具有有害的影响。本文提出了一个动力学模型来解释在316L不锈钢基体上通过化学气相沉积生长碳渗透碳纳米管所观察到的生锈现象。该模型来源于菲克第二定律,并预测碳化铬的生长是温度和时间的函数。碳化铬的形成被证明是腐蚀的机制,因为铬原子从基体中被吸收,阻止了钝化氧化铬层的形成,取代了有问题的氧化铁(锈)的形成。该模型通过浸泡细菌培养、扫描电子显微镜(SEM)和能量色散x射线光谱(EDX)等实验方法进行了验证。
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