Kost Jonas, Bleiziffer Alexander, Rusitov Dennis, Rühe Jürgen
Department of Microsystems Engineering (IMTEK), Laboratory for Chemistry & Physics of Interfaces, Albert-Ludwigs-Universität Freiburg, Georges-Köhler-Allee 103, 79110 Freiburg, Germany.
Freiburg Institute for Interactive Materials and Bioinspired Technologies (FIT), Albert-Ludwigs-Universität Freiburg, Georges-Köhler-Allee 105, 79110 Freiburg, Germany.
J Am Chem Soc. 2021 Jul 14;143(27):10108-10119. doi: 10.1021/jacs.1c02133. Epub 2021 Jun 16.
The focus of studies performed so far on the formation of surface-attached polymer networks by C,H insertion cross-linking (CHic) reaction has been largely on photochemical activation. This study describes the thermal activation of the formation of (surface-attached) polymer networks under comparably mild conditions. A novel cross-linker, based on a diazo phenyl ester group, is incorporated into various copolymers, which are subsequently deposited on solid substrates. Upon activation, the cross-linker moieties generate carbene intermediates, which lead to rapid, complete cross-linking of the whole film and simultaneous surface attachment to various organic materials via CHic. Although this system requires only comparably mild conditions (i.e., below 100 °C) to become activated, a long shelf life at room temperature is observed. The presented system might be useful in a wide range of applications, from coatings to rather complex geometries. We demonstrate the covalent binding of protein-repellent thin films to the inner surface of (rubber) tubes and the generation of patterned structures by a "branding iron" approach. For this a hot structure is pressed onto a diazo polymer coated surface, leading in the contact zone to fast cross-linking while in all other areas the polymer remains soluble and is washed off during subsequent extraction.
迄今为止,关于通过C-H插入交联(CHic)反应形成表面附着聚合物网络的研究主要集中在光化学活化方面。本研究描述了在相对温和的条件下(表面附着)聚合物网络形成的热活化过程。一种基于重氮苯酯基团的新型交联剂被引入到各种共聚物中,随后这些共聚物被沉积在固体基质上。活化后,交联剂部分产生卡宾中间体,这会导致整个薄膜快速、完全交联,并通过CHic同时与各种有机材料进行表面附着。尽管该体系仅需要相对温和的条件(即低于100°C)即可活化,但在室温下具有较长的保质期。所展示的体系可能在从涂层到相当复杂几何形状的广泛应用中有用。我们展示了抗蛋白质薄膜与(橡胶)管内表面的共价结合,以及通过“烙铁”方法生成图案化结构。为此,将一个热结构压在重氮聚合物涂层表面上,导致接触区域快速交联,而在所有其他区域聚合物仍可溶解,并在随后的萃取过程中被洗掉。