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用于具有响应性水凝胶的等离子体纳米结构局部功能化的紫外激光干涉光刻技术

UV-Laser Interference Lithography for Local Functionalization of Plasmonic Nanostructures with Responsive Hydrogel.

作者信息

Quilis Nestor Gisbert, Hageneder Simone, Fossati Stefan, Auer Simone K, Venugopalan Priyamvada, Bozdogan Anil, Petri Christian, Moreno-Cencerrado Alberto, Toca-Herrera Jose Luis, Jonas Ulrich, Dostalek Jakub

机构信息

BioSensor Technologies, AIT-Austrian Institute of Technology GmbH, Konrad-Lorenz-Strasse 24, 3430 Tulln, Austria.

CEST Kompetenzzentrum für elektrochemische Oberflächentechnologie GmbH, TFZ, Wiener Neustadt, Viktor-Kaplan-Strasse 2, 2700 Wiener Neustadt, Austria.

出版信息

J Phys Chem C Nanomater Interfaces. 2020 Feb 6;124(5):3297-3305. doi: 10.1021/acs.jpcc.9b11059. Epub 2020 Jan 10.

Abstract

A novel approach to local functionalization of plasmonic hotspots at gold nanoparticles with biofunctional moieties is reported. It relies on photocrosslinking and attachment of a responsive hydrogel binding matrix by the use of a UV interference field. A thermoresponsive poly(-isopropylacrylamide)-based (pNIPAAm) hydrogel with photocrosslinkable benzophenone groups and carboxylic groups for its postmodification was employed. UV-laser interference lithography with a phase mask configuration allowed for the generation of a high-contrast interference field that was used for the recording of periodic arrays of pNIPAAm-based hydrogel features with the size as small as 170 nm. These hydrogel arrays were overlaid and attached on the top of periodic arrays of gold nanoparticles, exhibiting a diameter of 130 nm and employed as a three-dimensional binding matrix in a plasmonic biosensor. Such a hybrid material was postmodified with ligand biomolecules and utilized for plasmon-enhanced fluorescence readout of an immunoassay. Additional enhancement of the fluorescence sensor signal by the collapse of the responsive hydrogel binding matrix that compacts the target analyte at the plasmonic hotspot is demonstrated.

摘要

报道了一种用生物功能部分对金纳米颗粒上的等离子体热点进行局部功能化的新方法。它依赖于通过使用紫外干涉场进行光交联和附着响应性水凝胶结合基质。使用了一种基于热响应性聚(N-异丙基丙烯酰胺)(pNIPAAm)的水凝胶,其具有可光交联的二苯甲酮基团和用于后修饰的羧基。采用具有相位掩模配置的紫外激光干涉光刻技术,可产生高对比度干涉场,用于记录尺寸小至170 nm的基于pNIPAAm的水凝胶特征的周期性阵列。这些水凝胶阵列覆盖并附着在直径为130 nm的金纳米颗粒周期性阵列顶部,并用作等离子体生物传感器中的三维结合基质。这种杂化材料用配体生物分子进行后修饰,并用于免疫测定的等离子体增强荧光读出。通过响应性水凝胶结合基质的塌陷来进一步增强荧光传感器信号,该塌陷将目标分析物压缩在等离子体热点处。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5ae9/7032879/27803f6c100d/jp9b11059_0001.jpg

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