School of Chemistry, The University of New South Wales, Sydney, NSW 2052, Australia.
Langmuir. 2011 Jan 4;27(1):328-34. doi: 10.1021/la102599m. Epub 2010 Dec 9.
We report the use of copper(I)-catalyzed alkyne-azide cycloaddition reaction (CuAAC) to selectively functionalize the internal and external surfaces of mesoporous materials. Porous silicon rugate filters with narrow line width reflectivity peaks were employed to demonstrate this selective surface functionalization approach. Hydrosilylation of a dialkyne species, 1,8-nonadiyne, was performed to stabilize the freshly fabricated porous silicon rugate filters against oxidation and to allow for further chemical derivatization via "click" CuAAC reactions. The external surface was modified through CuAAC reactions performed in the absence of nitrogen-based Cu(I)-stabilizing species (i.e., ligand-free reactions). To subsequently modify the interior pore surface, stabilization of the Cu(I) catalyst was required. Optical reflectivity measurements, water contact angle measurements, Fourier transform infrared spectroscopy (FTIR), and X-ray photoelectron spectroscopy (XPS) were used to demonstrate the ability of the derivatization approach to selectively modify mesoporous materials with different surface chemistry on the exterior and interior surfaces. Furthermore, porous silicon rugate filters modified externally with the cell-adhesive peptide Gly-Arg-Gly-Asp-Ser (GRGDS) allowed for cell adhesion via formation of focal adhesion points. Results presented here demonstrate a general approach to selectively modify mesoporous silicon samples with potential applications for cell-based biosensing.
我们报告了使用铜(I)催化的炔烃-叠氮化物环加成反应(CuAAC)来选择性地官能化介孔材料的内外表面。多孔硅波纹滤光片具有窄线宽反射率峰,用于证明这种选择性表面官能化方法。通过二炔物种,1,8-壬二炔的硅氢加成反应来稳定新制备的多孔硅波纹滤光片,防止氧化,并允许通过“点击”CuAAC 反应进行进一步的化学衍生化。通过在不存在氮基 Cu(I)稳定化物质(即无配体反应)的情况下进行 CuAAC 反应来修饰外表面。为了随后修饰内部孔表面,需要稳定 Cu(I)催化剂。光反射率测量、水接触角测量、傅里叶变换红外光谱(FTIR)和 X 射线光电子能谱(XPS)用于证明衍生化方法能够选择性地修饰具有不同表面化学性质的介孔材料,其表面化学性质在内外表面上不同。此外,用细胞黏附肽 Gly-Arg-Gly-Asp-Ser(GRGDS)修饰外部的多孔硅波纹滤光片允许通过形成粘着斑来进行细胞黏附。这里呈现的结果证明了一种选择性地修饰介孔硅样品的通用方法,具有用于基于细胞的生物传感的潜在应用。