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Polarization-Sensitive Surface-Enhanced In Situ Photoluminescence Spectroscopy of S. aureus Bacteria on Gold Nanospikes

机译:金纳米钉上金黄色葡萄球菌的偏振敏感表面增强原位光致发光光谱。

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摘要

We report the possibility of a time-resolved bacterial live/dead dynamics observation with the use of plasmonic nanospikes. Sharp nanospikes, fabricated on a 500-nm thick gold film by laser ablation with the use of 1030-nm femtosecond pulses, were tested as potential elements for antibacterial surfaces and plasmonic luminescence sensors. bacteria were stained by a live/dead viability kit, with the dead microorganisms acquiring the red colour, caused by the penetration of the luminescent dye propidium iodide through the damaged cell membrane. Photoluminescence was pumped by 515-nm femtosecond laser pulses with linear (Gaussian beam), circular, azimuthal and radial (Laguerre–Gaussian beam) polarizations, exciting the transverse plasmon resonance of the nanospikes and their apex lightning-rod near-field. According to the numerical electrodynamic modeling, the observed strong increase in the photoluminescence yield for radial polarization, while slightly lower for circular and azimuthal polarizations, compared with the low luminescence intensities for the linear laser polarization, was related to their different laser–nanospike coupling efficiencies.
机译:我们报告了使用等离子体纳米钉的时间分辨细菌活/死动力学观察的可能性。使用1030 nm飞秒脉冲通过激光烧蚀在500 nm厚的金膜上制造的尖锐的纳米钉被测试为抗菌表面和等离子发光传感器的潜在元素。细菌用活/死的生存力试剂盒染色,死的微生物变成红色,这是由于发光染料碘化丙啶穿透受损的细胞膜而引起的。 515 nm飞秒激光脉冲激发了光致发光,该脉冲具有线性(高斯光束),圆形,方位角和径向(拉格勒-高斯光束)偏振,激发了纳米尖峰及其顶点避雷针近场的横向等离子体激元共振。根据数值电动力学模型,与线性激光偏振的低发光强度相比,径向偏振的光致发光产量显着增加,而圆形和方位角偏振的光致发光产量则略有降低,这与它们的不同激光-纳秒耦合效率有关。 。

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