首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Directed immobilization of protein-coated nanospheres to nanometer-scale patterns fabricated by electron beam lithography of poly(ethylene glycol) self-assembled monolayers
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Directed immobilization of protein-coated nanospheres to nanometer-scale patterns fabricated by electron beam lithography of poly(ethylene glycol) self-assembled monolayers

机译:通过电子束光刻法对聚乙二醇自组装单分子层制备的蛋白质包被的纳米球定向固定至纳米级图案

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摘要

Controlling the spatial organization of biomolecules on solid supports with high resolution is important for a wide range of scientific and technological problems. Here we report a study of electron beam lithography (EBL) patterning of a self-assembled monolayer (SAM) of the amide-containing poly(ethylene glycol) (PEG) thiol CH3O(CH2CH2O)(17)-NHCO(CH2)(2)SH on Au and demonstrate the patterning of biomolecular features with dimensions approaching 40 nm. The electron dose dependence of feature size and pattern resolution is studied in detail by atomic force microscopy (AFM), which reveals two distinct patterning mechanisms. At low doses, the pattern formation occurs by SAM ablation in a self-developing process where the feature size is directly dose-dependent. At higher doses, electron beam- induced deposition of material, so-called contamination writing, is seen in the ablated areas of the SAM. The balance between these two mechanisms is shown to depend on the geometry of the pattern. The patterned SAMs were backfilled with fluorescent 40-nm spheres coated with NeutrAvidin. These protein- coated spheres adhered to exposed areas in the SAM with high selectivity. This direct writing approach for patterning bioactive surfaces is a fast and efficient way to produce patterns with a resolution approaching that of single proteins.
机译:高分辨率控制固体支持物上生物分子的空间组织对于广泛的科学技术问题很重要。在这里我们报告的电子实验(EBL)图案的含酰胺的聚(乙二醇)(PEG)硫醇CH3O(CH2CH2O)(17)-NHCO(CH2)(2)的自组装单层(SAM)的研究)SH在Au上并演示了尺寸接近40 nm的生物分子特征的图案。通过原子力显微镜(AFM)详细研究了特征尺寸和图案分辨率对电子剂量的依赖性,揭示了两种不同的图案形成机理。在低剂量下,图案形成是通过自显影过程中的SAM消融发生的,其中特征尺寸直接取决于剂量。在较高剂量下,在SAM的烧蚀区域中可以看到电子束诱导的材料沉积,即所谓的污染写入。这两种机制之间的平衡显示出取决于图案的几何形状。图案化的SAM用涂有NeutrAvidin的40 nm荧光球回填。这些蛋白质包被的球以高选择性粘附到SAM中的暴露区域。这种直接图案化生物活性表面的方法是一种快速有效的方法,可以产生分辨率接近单个蛋白质的图案。

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