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基于飞秒激光制备的超疏水/超亲水微孔平台的超高灵敏度表面增强拉曼光谱传感器

Extremely Sensitive SERS Sensors Based on a Femtosecond Laser-Fabricated Superhydrophobic/-philic Microporous Platform.

作者信息

Yu Jian, Wu Jiangen, Yang Huan, Li Pei, Liu Jing, Wang Meng, Pang Jihong, Li Chunbo, Yang Can, Xu Kaichen

机构信息

Sino-German College of Intelligent Manufacturing, Shenzhen Technology University, Shenzhen 518118, China.

Wenzhou University Pingyang Institute and Intelligent Manufacturing, Wenzhou 325035, China.

出版信息

ACS Appl Mater Interfaces. 2022 Sep 28;14(38):43877-43885. doi: 10.1021/acsami.2c10381. Epub 2022 Sep 13.

Abstract

The detection of molecules from highly diluted solutions with a limited amount is vital for precancer diagnosis, food safety, and forensic analysis. The sensitivity and convenience of detection techniques are the primary concerns. In this study, a hybrid superhydrophobic/-philic (SH/SHL) microporous platform is designed and fabricated by a femtosecond laser to improve surface-enhanced Raman scattering (SERS) performances. Relying on the micropores fabricated at the center of SHL patterns, sediments distributed at the central regions are avoided, leading to the further enrichment of the target molecules. The engineered micropores with high identification further improve the speed of Raman tests, and the fabricated SERS substrate shows an advantage in outdoor handheld detection and automated inspection applications. The optimized SERS sensor is sufficient for attomolar-level detection (10 M) of rhodamine 6G using analyte volumes of just 5 μL, corresponding to an enhancement factor of 5.19 × 10. Meanwhile, a relative standard deviation of 7.48% at 10 M shows the excellent uniformity of this proposed SERS platform. This work further pushes forward the practical applications of SERS technology in ultratrace molecular detections.

摘要

从有限量的高稀释溶液中检测分子对于癌症早期诊断、食品安全和法医分析至关重要。检测技术的灵敏度和便利性是主要关注点。在本研究中,通过飞秒激光设计并制造了一种混合超疏水/亲水(SH/SHL)微孔平台,以提高表面增强拉曼散射(SERS)性能。依靠在SHL图案中心制造的微孔,避免了沉积在中心区域的沉积物,从而导致目标分子的进一步富集。具有高识别性的工程微孔进一步提高了拉曼测试速度,并且所制造的SERS基底在户外手持检测和自动检测应用中显示出优势。优化后的SERS传感器仅使用5 μL分析物体积就足以对罗丹明6G进行阿托摩尔级(10 M)检测,对应的增强因子为5.19×10。同时,在10 M时7.48%的相对标准偏差表明该所提出的SERS平台具有出色的均匀性。这项工作进一步推动了SERS技术在超痕量分子检测中的实际应用。

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