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激光触发的硫醇-烯网络的写入和生物功能化。

Laser-Triggered Writing and Biofunctionalization of Thiol-Ene Networks.

机构信息

Department of Applied Science and Technology, Politecnico di Torino, Corso Duca degli Abruzzi 24, Torino, 10129, Italy.

Advanced Materials Metrology and Life Sciences, Istituto Nazionale di Ricerca Metrologica, Strada delle Cacce 91, Torino, 10135, Italy.

出版信息

Macromol Rapid Commun. 2020 May;41(10):e2000084. doi: 10.1002/marc.202000084. Epub 2020 Apr 16.

Abstract

The light responsivity of ortho-nitrobenzyl esters (o-NBE) is exploited to inscribe µ-scale 2.5D patterns in thiol-ene networks by direct laser writing. For this purpose, a multifunctional thiol and a photosensitive alkene with an o-NBE chromophore are cured upon visible light exposure without inducing a premature photocleavage of the o-NBE links. Once the network is formed, a laser beam source with a wavelength of 375 nm is used for selectively inducing the photocleavage reaction of the o-NBE groups. Positive tone patterns are directly inscribed onto the sample surface without the requirement of a subsequent development step (removing soluble species in an appropriate organic solvent). Along with the realization of dry-developable micropatterns, the chemical surface composition of the exposed areas can be conveniently adjusted since different domains with a tailored content of carboxylic groups are obtained simply by modulating the laser energy dose. In a following step, those are activated and exploited as anchor points for attaching an Alexa-546 conjugated Protein A. Thus, the laser writable thiol-ene networks do not only provide a convenient method for the fabrication of positive tone patterns but also open future prospectives for a wide range of biosensing applications.

摘要

利用邻硝基苄基酯(o-NBE)的光响应性,通过直接激光写入在硫醇-烯网络中刻写微尺度的 2.5D 图案。为此,使用一种多功能硫醇和一种带有 o-NBE 发色团的感光烯烃,在可见光照射下进行固化,而不会引发 o-NBE 键的过早光解。一旦网络形成,就可以使用波长为 375nm 的激光束源选择性地诱导 o-NBE 基团的光解反应。正性图案可以直接刻写在样品表面上,而无需后续的显影步骤(在适当的有机溶剂中去除可溶物质)。随着干式可开发微图案的实现,暴露区域的化学表面组成可以方便地进行调整,因为通过简单地调节激光能量剂量,可以获得具有定制羧酸基团含量的不同域。在接下来的步骤中,这些基团被激活并用作附着 Alexa-546 缀合蛋白 A 的锚定点。因此,激光可写入的硫醇-烯网络不仅为正性图案的制作提供了一种方便的方法,而且为广泛的生物传感应用开辟了未来的前景。

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