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Poly(ethylene glycol) interfaces for the control of biofouling in silicon-based microsystems

机译:聚(乙二醇)用于控制硅基微系统中生物污染的界面

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Silicon has been extensively employed as a material for the development of microsystems for analytical and separation technologies. However, biofouling that mainly arises due to the charged surface of silicon has been observed to limit the long-term functioning of these microsystems. Surface biofouling can be controlled by engineering the silicon substrates with poly(ethylene glycol) (PEG), a water-soluble, nontoxic, and nonimmunogenic polymer. PEG interfaces on silicon substrates can be created either by physical adsorption or by covalent immobilization such as grafting and chemical coupling. Nevertheless, covalently coupled PEGs are considered to be more stable due to strong forces of adhesion. Furthermore, PEG interfaces are needed that are ultrathin, uniform, conformal and stable in in vivo-like environments. In the present research effort, we examine PEG interfaces of various chain densities created by a covalent coupling reaction scheme. Unmodified ad PEG-modified silicon samples have been analyzed using the techniques of ellipsometry, contact angle measurement, X-ray photoelectron spectroscopy (XPS), atomic force microscopy (AFM), and fluorescence microscopy. Furthermore, we have investigated the stability of PEG films in dry and aqueous conditions up to four weeks in order to assess their ability to control biofouling on continuous basis.
机译:硅已广泛地用作用于开发分析和分离技术的微系统的材料。然而,已经观察到由于由于硅的带状表面而产生的生物污垢限制了这些微系统的长期运行。表面生物污染可以通过用聚(乙二醇)(PEG),水溶性,无毒性和非免疫原性聚合物来控制硅基衬底来控制。硅基衬底上的PEG界面可以通过物理吸附或通过共价固定,例如接枝和化学偶联。然而,由于粘合力的强力,共价偶联的栓钢被认为是更稳定的。此外,需要PEG界面,其在类似于体内环境中的超薄,均匀,保形和稳定。在本研究努力中,我们研究了通过共价偶联反应方案产生的各种链密度的PEG界面。已经使用椭圆形测定法,接触角度测量,X射线光电子谱(XPS),原子力显微镜(AFM)和荧光显微镜和荧光显微镜和荧光显微镜和荧光显微镜和荧光显微镜的技术已经分析了未修改的AD PEG改性硅样品。此外,我们已经研究了长达四周的干燥和水条件下PEG薄膜的稳定性,以便评估其在连续控制生物污染的能力。

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