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Gold-silicon nanofiber synthesized by femtosecond laser radiation for enhanced light absorptance

机译:飞秒激光辐射合成的金硅纳米纤维增强光吸收率

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摘要

In this study, we devised a new concept for the precise nanofabrication of Au-Si fibrous nanostructures using megahertz femtosecond laser irradiation in air and atmospheric pressure conditions. The weblike fibrous nanostructures of Au thin layer on silicon substrate, which are proposed for the application of solar cells, exhibit a specific improvement of the optical properties in visible wavelength. Varying numbers of laser interaction pulses were used to control the synthesis of the nanofibrous structures. Electron microscopy analysis revealed that the nanostructures are formed due to the aggregation of polycrystalline nanoparticles of the respective constituent materials with diameters varying between 30 and 90 nm. Measurement of the reflectance through a spectroradiometer showed that the coupling of incident electromagnetic irradiation was greatly improved over the broadband wavelength range. Lower reflectance intensity was obtained with a higher number of laser pulses due to the bulk of gold nanoparticles being agglomerated by the mechanism of fusion. This forms interweaving fibrous nanostructures which reveal a certain degree of assembly.PACS81.05.Zx; 81.07.-b
机译:在这项研究中,我们设计了一个新概念,用于在空气和大气压条件下使用兆赫兹飞秒激光辐照来精确地纳米制造Au-Si纤维纳米结构。被提议用于太阳能电池的在硅基底上的Au薄层的网状纤维纳米结构在可见波长下显示出光学性质的特定改善。使用不同数量的激光相互作用脉冲来控制纳米纤维结构的合成。电子显微镜分析显示,由于直径在30到90 nm之间的各种组成材料的多晶纳米颗粒的聚集,形成了纳米结构。通过分光辐射计测量反射率表明,入射电磁辐射的耦合在宽带波长范围内得到了极大改善。由于大量金纳米颗粒通过熔化机制团聚,因此使用较高数量的激光脉冲可获得较低的反射强度。这形成交织的纤维纳米结构,该结构揭示了一定程度的组装。PACS81.05.Zx; 81.07.-b

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