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Calcified Nanostructured Silicon Wafer Surfaces for Biosensing: Effects of Surface Modification on Bioactivity

机译:用于生物传感的钙化纳米结构硅晶片表面:表面改性对生物活性的影响

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摘要

The growth of known biologically-relevant mineral phases on semiconducting surfaces is one strategy to explicitly induce bioactivity in such materials, either for sensing or drug delivery applications. In this work, we describe the use of a spark ablation process to fabricate deliberate patterns of Ca10(PO4)6(OH)2 on crystalline Si (calcified nanoporous silicon). These patterns have been principally characterized by scanning electron microscopy in conjunction with elemental characterization by energy dispersive x-ray analysis. This is followed by a detailed comparison of the effects of fibroblast adhesion and proliferation onto calcified nanoporous Si, calcified nanoporous Si derivatized with alendronate, as well as control samples of an identical surface area containing porous SiO2. Fibroblast adhesion and proliferation assays demonstrate that a higher density of cells grow on the Ca3(PO4)2 /porous Si/ SiO2 structures relative to the alendronate-modified surfaces and porous Si/SiOM2 samples.
机译:在半导体表面上生长已知的与生物相关的矿物相是一种显着诱导此类材料生物活性的策略,可用于传感或药物输送应用。在这项工作中,我们描述了使用火花烧蚀工艺在晶体Si(钙化纳米多孔硅)上制造Ca10(PO4)6(OH)2的故意图案的方法。这些图案主要通过扫描电子显微镜结合通过能量色散X射线分析进行元素表征来表征。接下来是成纤维细胞粘附和增殖对钙化纳米孔硅,用阿仑膦酸盐衍生化的钙化纳米孔Si以及具有多孔SiO2的相同表面积对照样品的影响的详细比较。成纤维细胞粘附和增殖测定表明,相对于阿仑膦酸盐修饰的表面和多孔Si / SiOM2样品,Ca3(PO4)2 /多孔Si / SiO2结构上生长的细胞密度更高。

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