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Surface Modifications of Materials by Electrochemical Methods to Improve the Properties for Industrial and Medical Applications

机译:通过电化学方法表面改性,改善工业和医疗应用的性能

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There are two applied electrochemical methods in our group in order to obtain advanced functional surfaces on materials: (i) direct electrochemical synthesis by electro-codeposition process and (ii) anodization of materials to form nanoporous oxide layers followed by electrodeposition of hydroxyapatite or other bioactive molecules and compounds into porous film. Electrodeposition is a process of low energy consumption, and therefore very convenient for the surface modification of various types of materials. Electrodeposition is a powerful method compared with other methods, which led her to be adopted and spread rapidly in nanotechnology to obtain nanostructured layers and films. Nanoporous thin oxide layers on titanum alloys as support for hydroxyapatite or other biomolecules electrodeposition in view of biomedical applications could be obtained by electrochemical methods. For surface modification of titanium or titanium alloys to improve the biocompatibility or osseointegration, the two steps must be fulfilled; the first is controlled growth of oxide layer followed by second being biomolecule electrodeposition into nanoporous formed titanium oxide layer.
机译:我们组中有两种应用的电化学方法,以便在材料上获得先进的功能表面:(i)通过电码沉积方法直接电化学合成和(ii)材料的阳极氧化,形成纳米多孔氧化物层,然后进行羟基磷灰石或其他生物活性的电沉积分子和化合物进入多孔膜。电沉积是能耗低的过程,因此对各种类型材料的表面改性非常方便。电沉积是一种强大的方法,与其他方法相比,这导致她在纳米技术中迅速采用和蔓延,以获得纳米结构层和薄膜。通过电化学方法可以获得纳米铝合金上的纳米孔合金上钛合金作为羟基磷灰石或其他生物分子电沉积的氧化物层。对于钛或钛合金的表面改性以改善生物相容性或骨整合,必须满足两步;首先被控制氧化物层的生长,然后是第二是生物分子电沉积到纳米多孔形成的氧化钛层中。

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