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用聚乙二醇对纳米多孔氧化铝表面进行表面改性。

Surface modification of nanoporous alumina surfaces with poly(ethylene glycol).

作者信息

Popat Ketul C, Mor Gopal, Grimes Craig A, Desai Tejal A

机构信息

Department of Biomedical Engineering, Boston University, Boston, Massachusetts 02215, USA.

出版信息

Langmuir. 2004 Sep 14;20(19):8035-41. doi: 10.1021/la049075x.

Abstract

Nanoporous alumina surfaces have a variety of applications in biosensors, biofiltration, and targeted drug delivery. However, the fabrication route to create these nanopores in alumina results in surface defects in the crystal lattice. This results in inherent charge on the porous surface causing biofouling, that is, nonspecific adsorption of biomolecules. Poly(ethylene glycol) (PEG) is known to form biocompatible nonfouling films on silicon surfaces. However, its application to alumina surfaces is very limited and has not been well investigated. In this study, we have covalently attached PEG to nanoporous alumina surfaces to improve their nonfouling properties. A PEG-silane coupling technique was used to modify the surface. Different concentrations of PEG for different immobilization times were used to form PEG films of various grafting densities. X-ray photoelectron spectroscopy (XPS) was used to verify the presence of PEG moieties on the alumina surface. High-resolution C1s spectra show that with an increase in concentration and immobilization time, the grafting density of PEG also increases. Further, a standard overlayer model was used to calculate the thickness of PEG films formed using the XPS intensities of the Al2p peaks. The films formed by this technique are less than 2.5 nm thick, suggesting that such films will not clog the pores which are in the range of 70-80 nm.

摘要

纳米多孔氧化铝表面在生物传感器、生物过滤和靶向药物递送等方面有多种应用。然而,在氧化铝中制造这些纳米孔的制备路线会导致晶格中的表面缺陷。这会在多孔表面产生固有电荷,从而导致生物污染,即生物分子的非特异性吸附。已知聚乙二醇(PEG)能在硅表面形成生物相容性的防污膜。然而,其在氧化铝表面的应用非常有限,且尚未得到充分研究。在本研究中,我们将PEG共价连接到纳米多孔氧化铝表面,以改善其防污性能。采用PEG - 硅烷偶联技术对表面进行改性。使用不同浓度的PEG和不同的固定时间来形成具有不同接枝密度的PEG膜。利用X射线光电子能谱(XPS)来验证氧化铝表面PEG部分的存在。高分辨率C1s光谱表明,随着浓度和固定时间的增加,PEG的接枝密度也增加。此外,使用标准覆盖层模型,根据Al2p峰的XPS强度计算形成的PEG膜的厚度。通过该技术形成的膜厚度小于2.5 nm,这表明此类膜不会堵塞70 - 80 nm范围内的孔。

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