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首页> 外文期刊>Beilstein journal of organic chemistry. >Detonation nanodiamonds biofunctionalization and immobilization to titanium alloy surfaces as first steps towards medical application
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Detonation nanodiamonds biofunctionalization and immobilization to titanium alloy surfaces as first steps towards medical application

机译:爆轰纳米金刚石的生物功能化和固定化在钛合金表面,是迈向医学应用的第一步

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摘要

Due to their outstanding properties nanodiamonds are a promising nanoscale material in various applications such as microelectronics, polishing, optical monitoring, medicine and biotechnology. Beyond the typical diamond characteristics like extreme hardness or high thermal conductivity, they have additional benefits as intrinsic fluorescence due to lattice defects without photobleaching, obtained during the high pressure high temperature process. Further the carbon surface and its various functional groups in consequence of the synthesis, facilitate additional chemical and biological modification. In this work we present our recent results on chemical modification of the nanodiamond surface with phosphate groups and their electrochemically assisted immobilization on titanium-based materials to increase adhesion at biomaterial surfaces. The starting material is detonation nanodiamond, which exhibits a heterogeneous surface due to the functional groups resulting from the nitrogen-rich explosives and the subsequent purification steps after detonation synthesis. Nanodiamond surfaces are chemically homogenized before proceeding with further functionalization. Suspensions of resulting surface-modified nanodiamonds are applied to the titanium alloy surfaces and the nanodiamonds subsequently fixed by electrochemical immobilization. Titanium and its alloys have been widely used in bone and dental implants for being a metal that is biocompatible with body tissues and able to bind with adjacent bone during healing. In order to improve titanium material properties towards biomedical applications the authors aim to increase adhesion to bone material by incorporating nanodiamonds into the implant surface, namely the anodically grown titanium dioxide layer. Differently functionalized nanodiamonds are characterized by infrared spectroscopy and the modified titanium alloys surfaces by scanning and transmission electron microscopy. The process described shows an adsorption and immobilization of modified nanodiamonds on titanium; where aminosilanized nanodiamonds coupled with O -phosphorylethanolamine show a homogeneous interaction with the titanium substrate.
机译:由于其卓越的性能,纳米金刚石是在各种应用中的有前途的纳米级材料,例如微电子,抛光,光学监控,医学和生物技术。除了典型的金刚石特性(例如极高的硬度或高的导热性)外,它们还具有其他优势,例如由于在高压高温过程中获得的无光致漂白的晶格缺陷而产生的固有荧光。此外,由于合成的结果,碳表面及其各种官能团促进了另外的化学和生物学修饰。在这项工作中,我们介绍了我们最近的研究成果,即用磷酸基团对纳米金刚石表面进行化学修饰,以及将其电化学辅助固定在钛基材料上以增加在生物材料表面的附着力。起始材料是爆轰纳米金刚石,由于富氮炸药和爆轰合成后的后续纯化步骤所产生的官能团,其表面呈现出异质表面。在继续进行功能化之前,先对纳米金刚石表面进行化学均质处理。将所得的表面改性的纳米金刚石的悬浮液施加到钛合金表面上,然后通过电化学固定将纳米金刚石固定。钛及其合金已被广泛用于骨骼和牙齿植入物中,是一种与人体组织具有生物相容性并且能够在愈合过程中与相邻骨骼结合的金属。为了改善钛材料在生物医学应用中的性能,作者的目的是通过将纳米金刚石结合到植入物表面即阳极生长的二氧化钛层中来增加对骨骼材料的粘附力。不同功能化的纳米金刚石的特征在于红外光谱,而改性钛合金的表面则具有扫描和透射电子显微镜。所描述的方法显示了改性纳米金刚石在钛上的吸附和固定。其中氨基硅烷化的纳米金刚石与O-磷酰基乙醇胺偶联显示出与钛基质的均匀相互作用。

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