Hackl Claudia, Beyreiss Reinhild, Geissler David, Jezierski Stefan, Belder Detlev
Institut für Analytische Chemie, Universität Leipzig , Linnéstraße 3, 04103 Leipzig, Germany.
Anal Chem. 2014 Apr 15;86(8):3773-9. doi: 10.1021/ac500793e. Epub 2014 Apr 7.
In the present study, we introduce two-photon excitation at 532 nm for label-free fluorescence detection in chip electrochromatography. Two-photon excitation at 532 nm offers a promising alternative to one-photon excitation at 266 nm, as it enables the use of economic chip materials instead of fused silica. In order to demonstrate these benefits, one-photon and two-photon induced fluorescence detection are compared in different chip layouts and materials with respect to the achievable sensitivity in the detection of polycyclic aromatic hydrocarbons (PAHs). Customized chromatography chips with cover or bottom slides of different material and thickness are produced by means of a rapid prototyping method based on liquid-phase lithography. The design of thin bottom chips (180 μm) enables the use of high-performance immersion objectives with low working distances, which allows one to exploit the full potential of two-photon excitation for a sensitive detection. The developed method is applied for label-free analysis of PAHs separated on a polymer monolith inside polymer glass sandwich chips made from fused silica or soda-lime glass. The obtained limits of detection range from 40 nM to 1.95 μM, with similar sensitivities in fused silica thin bottom chips for one-photon and two-photon excitation. In deep-UV non- or less-transparent devices two-photon excitation is mandatory for label-free detection of aromatics with high sensitivity.
在本研究中,我们引入了532 nm的双光子激发用于芯片电色谱中的无标记荧光检测。532 nm的双光子激发为266 nm的单光子激发提供了一种有前景的替代方案,因为它能够使用经济的芯片材料而非熔融石英。为了证明这些优势,我们在不同的芯片布局和材料中比较了单光子和双光子诱导荧光检测在检测多环芳烃(PAHs)方面可实现的灵敏度。通过基于液相光刻的快速成型方法制作了具有不同材料和厚度的盖玻片或底部载玻片的定制色谱芯片。薄底部芯片(180μm)的设计使得能够使用工作距离短的高性能浸没物镜,这使得人们能够充分利用双光子激发的潜力进行灵敏检测。所开发的方法用于对在由熔融石英或钠钙玻璃制成的聚合物玻璃夹心芯片内的聚合物整体上分离的PAHs进行无标记分析。获得的检测限范围为40 nM至1.95μM,在熔融石英薄底部芯片中,单光子和双光子激发具有相似的灵敏度。在深紫外非透明或低透明度的器件中,双光子激发对于高灵敏度无标记检测芳烃是必不可少的。