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飞秒激光图案化超疏水/疏水 SERS 传感器用于快速定位痕量检测。

Femtosecond laser patterned superhydrophobic/hydrophobic SERS sensors for rapid positioning ultratrace detection.

出版信息

Opt Express. 2021 May 24;29(11):16904-16913. doi: 10.1364/OE.423789.

Abstract

Ultratrace molecular detections are vital for precancer diagnosis, forensic analysis, and food safety. Superhydrophobic (SH) surface-enhanced Raman scattering (SERS) sensors are regarded as an ideal approach to improve detection performance by concentrating analyte molecules within a small volume. However, due to the low adhesion of SH surfaces, the analyte droplet is prone to rolling, making it hard to deposit molecules on a predetermined position. Furthermore, the sediment with a very small area on the SH-SERS surface is difficult to be captured even with a Raman microscope. In this study, femtosecond laser fabricated hybrid SH/hydrophobic (SH/HB) surfaces are successfully applied to realize a rapid and highly sensitive SERS detection. By modulating dual surface structures and wetting behaviors, the analyte molecules can be enriched at the edge of HB pattern. This improves the convenience and speed of Raman test. On a hybrid SH/HB SERS substrate with a circular HB pattern at 300-µm-diameter, a femtomolar level (10 M) of rhodamine 6G can be detected by using analyte volumes of just 5 µL. The SERS enhancement factor can reach 5.7×10 and a good uniformity with a relative standard deviation of 6.98% is achieved. Our results indicate that the laser fabrication of hybrid SERS sensor offers an efficient and cost-effective approach for ultratrace molecular detection.

摘要

超痕量分子检测对于癌症前诊断、法医分析和食品安全至关重要。超疏水(SH)表面增强拉曼散射(SERS)传感器被认为是一种通过将分析物分子集中在小体积内来提高检测性能的理想方法。然而,由于 SH 表面的低附着力,分析物液滴容易滚动,使得难以将分子沉积在预定位置上。此外,SH-SERS 表面上面积非常小的沉淀物即使使用拉曼显微镜也很难被捕获。在本研究中,成功应用飞秒激光制造的混合 SH/疏水性(SH/HB)表面来实现快速和高灵敏度的 SERS 检测。通过调节双重表面结构和润湿行为,可以将分析物分子富集在 HB 图案的边缘。这提高了拉曼测试的便利性和速度。在直径为 300 µm 的圆形 HB 图案的混合 SH/HB SERS 衬底上,仅使用 5 µL 的分析物体积,即可检测到纳摩尔级(10 M)的罗丹明 6G。SERS 增强因子可达 5.7×10,并且实现了良好的均匀性,相对标准偏差为 6.98%。我们的结果表明,混合 SERS 传感器的激光制造为超痕量分子检测提供了一种高效且具有成本效益的方法。

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