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通过液-液双层的选择性反转从二维化学图案到三维拓扑结构。

From a two-dimensional chemical pattern to a three-dimensional topology through selective inversion of a liquid-liquid bilayer.

作者信息

Léopoldès Julien, Damman Pascal

机构信息

Laboratoire de Physicochimie des Polymères, Université de Mons Hainaut, 20, Place du Parc, Mons, B-7000, Belgium.

出版信息

Nat Mater. 2006 Dec;5(12):957-61. doi: 10.1038/nmat1787. Epub 2006 Nov 26.

Abstract

Soft organic surfaces with more and more complex topologies are required daily to engineer appropriate microstructures for many different applications such as DNA array technology, biological optics for advanced photonic systems and microfluidics. Complementarily to conventional lithographic processes, several pioneering methods have been developed recently, by controlling phase separation of polymer blends, spinodal decomposition of homopolymers or by using the action of additional external forces driving diverse instabilities. Here we present a method that not only provides original concepts towards the three-dimensional (3D) structuring of liquids, on the basis of the synergistic effects of molecular diffusion and confined nucleation, but also suggests original solutions for the transport, mixing and filtering of small volumes of liquid. Through the intrinsic destabilization of a liquid-liquid bilayer, the 2D pattern of a chemically structured surface with 'hydrophilic' and 'hydrophobic' domains is transferred to a solid/liquid interface as a 3D topography with either 'positive' or 'negative' replication. This easy-to-use process has potential applications in various technological realms requiring a specific topography at interfaces such as microfluidics or biosensors.

摘要

如今,人们日常需要具有越来越复杂拓扑结构的柔软有机表面,以便为许多不同应用设计合适的微观结构,如DNA阵列技术、用于先进光子系统的生物光学以及微流体技术。作为传统光刻工艺的补充,最近已经开发了几种开创性方法,这些方法通过控制聚合物共混物的相分离、均聚物的旋节线分解或利用驱动各种不稳定性的额外外力作用来实现。在此,我们提出一种方法,该方法不仅基于分子扩散和受限成核的协同效应,为液体的三维(3D)结构化提供了原创概念,而且还为小体积液体的传输、混合和过滤提出了原创解决方案。通过液 - 液双层的固有失稳,具有“亲水”和“疏水”域的化学结构化表面的二维图案作为具有“正”或“负”复制的三维形貌转移到固/液界面。这种易于使用的工艺在各种需要界面具有特定形貌的技术领域具有潜在应用,如微流体技术或生物传感器。

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