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用于生物分子图案化应用的生物正交氟化抗蚀剂。

Bio-orthogonal fluorinated resist for biomolecules patterning applications.

机构信息

Department of Chemistry, National and Kapodistrian University of Athens, Athens, Greece; Immunoassay/Immunosensors Lab, INRaSTES, NCSR Demokritos, Aghia Paraskevi, Greece.

Immunoassay/Immunosensors Lab, INRaSTES, NCSR Demokritos, Aghia Paraskevi, Greece.

出版信息

Colloids Surf B Biointerfaces. 2019 Jun 1;178:208-213. doi: 10.1016/j.colsurfb.2019.03.006. Epub 2019 Mar 4.

Abstract

The patterning of organic materials on solid substrate surfaces has been demonstrated by several methods, such as photolithography, soft lithography, imprint lithography and ink-jet printing. Fluorinated polymers and solvents provide attractive material systems to develop new patterning approaches, as they are chemically orthogonal to non-fluorinated organic molecules, allowing their efficient incorporation in different devices and systems. Moreover, fluorinated polymers are soluble in hydrofluoroether solvents, benign to biomolecules, and can be properly engineered to enable efficient photolithographic patterning. In this work, we report the development of a new photolithographic process for patterning biomolecules on any kind of surfaces either by physical adsorption or covalent bonding. The photoresist is based on a fluorinated material and hydrofluoroether solvents that have minimum interactions with biomolecules and thus they can be characterized as orthogonal to the biomolecules (bio-orthogonal). In both cases, the creation of patterns with dimensions down to 2 μm was achieved. The implementation of the developed photolithographic procedure for the creation of a multi-protein microarray is demonstrated.

摘要

已经有多种方法可以在固体基底表面对有机材料进行图案化,例如光刻、软光刻、压印光刻和喷墨打印。含氟聚合物和溶剂为开发新的图案化方法提供了有吸引力的材料体系,因为它们与非含氟有机分子在化学上是正交的,允许它们在不同的器件和系统中有效地结合。此外,含氟聚合物可溶于氢氟醚溶剂中,对生物分子无害,并且可以进行适当的工程设计,以实现有效的光刻图案化。在这项工作中,我们报告了一种新的光刻工艺的开发,该工艺可通过物理吸附或共价键合在任何类型的表面上对生物分子进行图案化。光致抗蚀剂基于含氟材料和氢氟醚溶剂,它们与生物分子的相互作用最小,因此可以将其描述为与生物分子正交(生物正交)。在这两种情况下,都实现了尺寸低至 2 μm 的图案的创建。展示了所开发的光刻程序在创建多蛋白微阵列中的应用。

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