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Electro-deposition of bactericidal and corrosion-resistant hydroxyapatite nanoslabs

机译:杀菌和耐腐蚀性羟基磷灰石纳米菌的电沉积

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摘要

Herein, nanoscale hydroxyapatite (HA) with a slab-like morphology was synthesized, and its size was calculated to be in the range of 80-150 nm, as confirmed via scanning electron microscopy (SEM) and atomic force microscopy (AFM). The nanoscale HA with a slab-like structure has been referred as HA nanoslabs in the manuscript. The composition, crystallinity, wettability, bacterial resistance porosity, surface roughness and corrosion resistance of these HA nanoslabs were studied using energy dispersive spectroscopy (EDAX), X-ray diffraction (XRD), contact angle, colony count BET analyzer and profilometer and polarization techniques, respectively. The contact angle of the HA nanoslabs was found to be 22.6 degrees, which indicated the hydrophilic nature of these nanoslabs. Their bacterial resistance was studied against the Salmonella typhi strain, and it was found that in the presence of the HA nanoslabs, the growth of the bacteria was hindered. For the corrosion resistance study, the HA nanoslabs were electro-deposited on a titanium alloy, used as a substrate. The deposition was carried out at varying currents, viz, 1 mA, 3 mA and 5 mA. The open circuit potential (OCP) and polarization were used for the estimation of the corrosion resistance of the bare and coated substrates. The corrosion potential started shifting towards noble potential, and the current density started decreasing with an increase in the electrochemical deposition current. This indicated good corrosion resistance of these nanoslabs.
机译:在此,合成了具有片状形态的纳米级羟基磷灰石(HA),并且其尺寸计算为80-150nm,通过扫描电子显微镜(SEM)和原子力显微镜(AFM)确认。具有板状结构的纳米级HA已被称为稿件中的HA纳米萘。使用能量色散光谱(eDAX),X射线衍射(XRD),接触角,菌落计数BET分析仪和轮廓仪和偏振技术研究了这些HA纳米蛋白的组成,结晶度,润湿性,细菌抗性孔隙率,表面粗糙度和耐腐蚀性, 分别。发现HA纳米梭芥的接触角为22.6度,表明这些纳米球的亲水性质。研究了它们的细菌抗性针对沙门氏菌菌株的抗性,并且发现在HA纳米蛋白的存在下,受到细菌的生长。对于耐腐蚀性研究,将HA纳米溶解物在钛合金上电沉积,用作基材。沉积在不同的电流,Ziz,1mA,3 mA和5mA处进行。开路电位(OCP)和偏振用于估计裸露和涂覆的基材的耐腐蚀性。腐蚀电位开始倾向于高尚电位,并且电流密度开始随着电化学沉积电流的增加而降低。这表明这些纳米球的耐腐蚀性良好。

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  • 来源
    《RSC Advances》 |2019年第20期|共9页
  • 作者单位

    Cent Sci Instruments Org CSIR CSIO Chandigarh India;

    Cent Sci Instruments Org CSIR CSIO Chandigarh India;

    Cent Sci Instruments Org CSIR CSIO Chandigarh India;

    Cent Sci Instruments Org CSIR CSIO Chandigarh India;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
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