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通过层层沉积和表面引发原子转移自由基聚合在不锈钢上制备无机-有机杂化涂层以防治生物腐蚀。

Inorganic-organic hybrid coatings on stainless steel by layer-by-layer deposition and surface-initiated atom-transfer-radical polymerization for combating biocorrosion.

机构信息

Department of Chemical and Biomolecular Engineering, National University of Singapore, 10 Kent Ridge Crescent, Singapore 119260, Singapore.

出版信息

ACS Appl Mater Interfaces. 2009 Mar;1(3):640-52. doi: 10.1021/am800182d.

Abstract

To improve the biocorrosion resistance of stainless steel (SS) and to confer the bactericidal function on its surface for inhibiting bacterial adhesion and biofilm formation, well-defined inorganic-organic hybrid coatings, consisting of the inner compact titanium oxide multilayers and outer dense poly(vinyl-N-hexylpyridinium) brushes, were successfully developed. Nanostructured titanium oxide multilayer coatings were first built up on the SS substrates via the layer-by-layer sol-gel deposition process. The trichlorosilane coupling agent, containing the alkyl halide atom-transfer-radical polymerization (ATRP) initiator, was subsequently immobilized on the titanium oxide coatings for surface-initiated ATRP of 4-vinylpyridine (4VP). The pyridium nitrogen moieties of the covalently immobilized 4VP polymer, or P(4VP), brushes were quaternized with hexyl bromide to produce a high concentration of quaternary ammonium salt on the SS surfaces. The excellent antibacterial efficiency of the grafted polycations, poly(vinyl-N-pyridinium bromide), was revealed by viable cell counts and atomic force microscopy images of the surface. The effectiveness of the hybrid coatings in corrosion protection was verified by the Tafel plot and electrochemical impedance spectroscopy measurements.

摘要

为了提高不锈钢的生物腐蚀性,并在其表面赋予杀菌功能以抑制细菌黏附和生物膜形成,成功开发了由内层致密的氧化钛多层和外层致密的聚(乙烯基-N-己基吡啶鎓)刷组成的明确的无机-有机杂化涂层。通过层层溶胶-凝胶沉积工艺,首先在 SS 基底上构建了纳米结构的氧化钛多层涂层。随后,将含有卤代烷基原子转移自由基聚合(ATRP)引发剂的三氯硅烷偶联剂固定在氧化钛涂层上,用于 4-乙烯基吡啶(4VP)的表面引发 ATRP。通过与己基溴反应,将共价固定的 4VP 聚合物(或 P(4VP))刷中的吡啶氮部分季铵化,在 SS 表面产生高浓度的季铵盐。通过表面的活菌计数和原子力显微镜图像,揭示了接枝聚阳离子(聚(乙烯基-N-吡啶溴化鎓))的优异的抗菌效率。通过 Tafel 图和电化学阻抗谱测量验证了杂化涂层在腐蚀防护方面的有效性。

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