Nanoplasmonic SERS on fidget spinner for digital bacterial identification.

IF 7.3 1区 工程技术 Q1 INSTRUMENTS & INSTRUMENTATION
Mamata Karmacharya, Issac Michael, Jiyun Han, Elizabeth Maria Clarissa, Oleksandra Gulenko, Sumit Kumar, Yoon-Kyoung Cho
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Abstract

Raman spectroscopy offers non-destructive and highly sensitive molecular insights into bacterial species, making it a valuable tool for detection, identification, and antibiotic susceptibility testing. However, achieving clinically relevant accuracy, quantitative data, and reproducibility remains challenging due to the dominance of bulk signals and the uncontrollable heterogeneity of analytes. In this study, we introduce an innovative diagnostic tool: a plasmonic fidget spinner (P-FS) incorporating a nitrocellulose membrane integrated with a metallic feature, referred to as a nanoplasmonic-enhanced matrix, designed for simultaneous bacterial filtration and detection. We developed a method to fabricate a plasmonic array patterned nitrocellulose membrane using photolithography, which is then integrated with a customized fidget spinner. Testing the P-FS device with various bacterial species (E. coli 25922, S. aureus 25923, E. coli MG1655, Lactobacillus brevis, and S. mutans 3065) demonstrated successful identification based on their unique Raman fingerprints. The bacterial interface with regions within the plasmonic array, where the electromagnetic field is most intensely concentrated-called nanoplasmonic hotspots-on the P-FS significantly enhances sensitivity, enabling more precise detection. SERS intensity mappings from the Raman spectrometer are transformed into digital signals using a threshold-based approach to identify and quantify bacterial distribution. Given the P-FS's ability to enhance vibrational signatures and its scalable fabrication under routine conditions, we anticipate that nanoplasmonic-enhanced Raman spectroscopy-utilizing nanostructures made from metals (specifically gold and silver) deposited onto a nitrocellulose membrane to amplify Raman scattering signals-will become the preferred technology for reliable and ultrasensitive detection of various analytes, including those crucial to human health, with strong potential for transitioning from laboratory research to clinical applications.

拉曼光谱可提供非破坏性和高灵敏度的细菌物种分子洞察力,使其成为检测、鉴定和抗生素敏感性测试的重要工具。然而,由于大量信号占主导地位以及分析物的不可控异质性,实现临床相关的准确性、定量数据和可重复性仍具有挑战性。在本研究中,我们介绍了一种创新的诊断工具:结合了硝酸纤维素膜与金属特征的等离子体小飞虫(P-FS),被称为纳米等离子体增强基质,旨在同时进行细菌过滤和检测。我们开发了一种利用光刻技术制造等离子体阵列图案硝酸纤维素膜的方法,然后将其与定制的小飞人集成在一起。我们用各种细菌(大肠杆菌 25922、金黄色葡萄球菌 25923、大肠杆菌 MG1655、布氏乳杆菌和变异杆菌 3065)对 P-FS 装置进行了测试,结果表明,根据它们独特的拉曼指纹,可以成功地识别它们。在 P-FS 上,细菌与等离子体阵列内电磁场最集中的区域(即纳米等离子体热点)之间的界面大大提高了灵敏度,从而实现了更精确的检测。使用基于阈值的方法将拉曼光谱仪的 SERS 强度映射转换为数字信号,以识别和量化细菌分布。鉴于 P-FS 增强振动特征的能力及其在常规条件下的可扩展制造,我们预计纳米光电增强拉曼光谱--利用沉积在硝酸纤维素膜上的金属(特别是金和银)制成的纳米结构来放大拉曼散射信号--将成为可靠、超灵敏地检测各种分析物(包括对人类健康至关重要的分析物)的首选技术,具有从实验室研究过渡到临床应用的巨大潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Microsystems & Nanoengineering
Microsystems & Nanoengineering Materials Science-Materials Science (miscellaneous)
CiteScore
12.00
自引率
3.80%
发文量
123
审稿时长
20 weeks
期刊介绍: Microsystems & Nanoengineering is a comprehensive online journal that focuses on the field of Micro and Nano Electro Mechanical Systems (MEMS and NEMS). It provides a platform for researchers to share their original research findings and review articles in this area. The journal covers a wide range of topics, from fundamental research to practical applications. Published by Springer Nature, in collaboration with the Aerospace Information Research Institute, Chinese Academy of Sciences, and with the support of the State Key Laboratory of Transducer Technology, it is an esteemed publication in the field. As an open access journal, it offers free access to its content, allowing readers from around the world to benefit from the latest developments in MEMS and NEMS.
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