Koromyslov Sergei, Ageev Eduard, Ponkratova Ekaterina, Larin Artem, Shishkin Ivan, Danilov Denis, Mukhin Ivan, Makarov Sergey, Zuev Dmitry
Department of Physics, ITMO University, 191002 Saint-Petersburg, Russia.
Interdisciplinary Resource Center for Nanotechnology, Saint Petersburg State University, 199034 Saint-Petersburg, Russia.
Nanomaterials (Basel). 2022 May 21;12(10):1756. doi: 10.3390/nano12101756.
It is very natural to use silicon as a primary material for microelectronics. However, silicon application in nanophotonics is limited due to the indirect gap of its energy band structure. To improve the silicon emission properties, it can be combined with a plasmonic part. The resulting metal-dielectric (hybrid) nanostructures have shown their excellence compared to simple metallic dielectric nanostructures. Still, in many cases, the fabrication of such structures is time consuming and quite difficult. Here, for the first time, we demonstrate a single-step and lithography-free laser-induced dewetting of bi-layer nanoscale-thickness gold-silicon films supported by a glass substrate to produce hybrid nanoparticles. For obtaining hybrid nanoparticles, we study nonlinear photoluminescence by mapping their optical response and morphology by scanning electron microscopy. This method can be used for the fabrication of arrays of hybrid nanoparticles providing white-light photoluminescence with a good control of their microscopic sizes and position. The developed approach can be useful for a wide range of photonic applications including the all-optical data processing and storage where miniaturization down to micro- and nanoscale together with an efficiency increase is of high demand.
将硅用作微电子学的主要材料是很自然的。然而,由于其能带结构的间接带隙,硅在纳米光子学中的应用受到限制。为了改善硅的发射特性,可以将其与等离子体部分结合。与简单的金属介电纳米结构相比,所得的金属-介质(混合)纳米结构已显示出其卓越性。尽管如此,在许多情况下,这种结构的制造既耗时又相当困难。在此,我们首次展示了一种由玻璃基板支撑的双层纳米级厚度的金-硅薄膜的一步法且无需光刻的激光诱导去湿,以制备混合纳米颗粒。为了获得混合纳米颗粒,我们通过映射其光学响应来研究非线性光致发光,并通过扫描电子显微镜观察其形态。该方法可用于制造混合纳米颗粒阵列,提供白光光致发光,并能很好地控制其微观尺寸和位置。所开发的方法可用于广泛的光子应用,包括全光数据处理和存储,在这些应用中,对缩小到微米和纳米尺度以及提高效率有很高的需求。