论文标题

点播等离子纳米颗粒插入激光诱导的周期性表面结构(LIPSS)硅上的光学纳米传感器

On-demand Plasmon Nanoparticle-Embedded Laser-Induced Periodic Surface Structures (LIPSSs) on Silicon for Optical Nanosensing

论文作者

Borodaenko, Yulia, Syubaev, Sergey, Khairullina, Evgeniia, Tumkin, Ilya, Gurbatov, Stanislav, Mironenko, Aleksandr, Mitsai, Eugeny, Modin, Evgeny, Gurevich, Evgeny L., Kuchmizhak, Aleksandr A.

论文摘要

Ultrashort激光脉冲允许传递电磁能,从而导致其局部加热,可通过消融/蒸发和驱动界面化学反应用于材料去除。在这里,我们表明,这两个过程都可以同时组合在Si Wafer的直接激光纳米纹片中,以实现溶液,以产生实际相关的金属 - 孔径表面纳米形态。如此独特的杂交形态代表了深波大波的Si Lipss,其高度降低到70 nm,其高光谱比率纳米肾上腺肾上腺肾上腺含量,并带有可控量的等离激元纳米颗粒,这些等离子纳米颗粒是通过$ laser诱导的前体虫子贵族贵族盐的分解而形成的。此外,利用驱动驱动过程的驱动驱动过程可用于在当地用不同等离子体激活的纳米颗粒进行局部装饰的表面形态。带有可控量的高贵金属纳米颗粒的轻便吸收深波大波Si Lipss代表了与等离子体相关的应用等吸引人的架构,例如光学纳米传感,其中有效地将光学波与高度局部局部的电磁型电磁效率耦合到高度局部的电磁```热点''````''热点了。为了支持这一说法,我们证明了这种杂交形态在溶液中基于荧光的汞阳离子的基于荧光浓度的检测中适用。

Ultrashort laser pulses allows to deliver electromagnetic energy to matter causing its localized heating that can be used for both material removal via ablation/evaporation and drive interface chemical reactions. Here, we showed that both mentioned processes can be simultaneously combined within straightforward laser nanotexturing of Si wafer in functionalizing solution to produce a practically relevant metal-semiconductor surface nano-morphology. Such unique hybrid morphology represent deep-subwavelength Si LIPSSs with a extremely short period down to 70 nm with their high-aspect-ratio nanotrenches loaded with controllable amount of plasmonic nanoparticles formed $via$ laser-induced decomposition of the precursor noble-metal salts. Moreover, heat localization driving reduction process was utilized to produce surface morphology locally decorated with dissimilar plasmon-active nanoparticles. Light-absorbing deep-subwavelength Si LIPSSs loaded with controllable amount of noble-metal nanoparticles represent an attractive architecture for plasmon-related applications such as optical nanosensing where efficient coupling of the propagating optical waves to highly localized electromagnetic ``hot spots`` is a mandatory requirement. To support this statement we demonstrated applicability of such hybrid morphology for fluorescence-based detection of nanomolar concentrations of mercury cations in solution.

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