论文标题

用于大肠杆菌光学传感的非对称分裂等离子纳米结构

Asymmetric split-ring plasmonic nanostructures for optical sensing of Escherichia coli

论文作者

Kotsifaki, Domna G., Singh, Rajiv Ranjan, Chormaic, Sile Nic, Truong, Viet Giang

论文摘要

液中微生物检测的策略对于临床和制药行业至关重要。虽然拉曼光谱法是用于微生物检测的一种有希望的无标签技术,但由于细菌弱的拉曼信号,它仍然具有挑战性。在这项工作中,我们利用超材料的独特电磁特性,使用一系列fano谐振的metamolecules鉴定液体中的细菌成分。这个富有增强的拉曼散射(FERS)平台旨在在6030 nm左右的蛋白质酰胺基团指纹附近展示FANO共振。大肠杆菌的拉曼签名在530 nm的非谐波激光激发下的超材料激光激发下的多个位置记录,在该位置将光损伤效应最小化。由于大肠杆菌的大小与超材料的微隙(即0.41μm)相当,因此其局部固定化会导致拉曼敏感性的提高。我们还观察到,与细菌酰胺峰有关的时间依赖性FERS信号在细菌的指数期间增加,而在固定期则减少。这项工作为开发适合大规模应用的超敏FERS平台提供了一系列新的机会,并且在非谐振激发时对于诊断和环境研究特别有用。

Strategies for in-liquid micro-organism detection are crucial for the clinical and pharmaceutical industries. While Raman spectroscopy is a promising label-free technique for micro-organism detection, it remains challenging due to the weak bacterial Raman signals. In this work, we exploit the unique electromagnetic properties of metamaterials to identify bacterial components in liquid using an array of Fano-resonant metamolecules. This Fano-enhanced Raman scattering (FERS) platform is designed to exhibit a Fano resonance close to the protein amide group fingerprint around 6030 nm. Raman signatures of Escherichia coli were recorded at several locations on the metamaterial under off-resonance laser excitation at 530 nm, where the photodamage effect is minimized. As the sizes of the Escherichia coli are comparable to the micro-gaps, i.e 0.41 μm, of the metamaterials, its local immobilisation leads to an increase in the Raman sensitivity. We also observed that the time-dependent FERS signal related to bacterial amide peaks increased during the bacteria's mid-exponential phase while it decreased during the stationary phase. This work provides a new set of opportunities for developing ultrasensitive FERS platforms suitable for large-scale applications and could be particularly useful for diagnostics and environmental studies at off-resonance excitation.

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