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Numerical Study of Tunable Photonic Nanojets Generated by Biocompatible Hydrogel Core-Shell Microspheres for Surface-Enhanced Raman Scattering Applications

机译:生物相容性水凝胶核壳微球对表面增强拉曼散射应用产生可调谐光子纳米射流的数值研究

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摘要

Core-shell microspheres have been applied in various research areas and, in particular, they are used in the generation of photonic nanojets with suitable design for photonic applications. The photonic nanojet is a narrow and focused high-intensity light beam emitting from the shadow-side of microspheres with tunable effective length, thus enabling its applications in biosensing technology. In this paper, we numerically studied the photonic nanojets brought about from biocompatible hydrogel core-shell microspheres with different optical properties. It was found that the presence of the shell layer can significantly affect the characteristics of the photonic nanojets, such as the focal distance, intensity, effective length, and focal size. Generally speaking, the larger the core-shell microspheres, the longer the focal distance, the stronger the intensity, the longer the effective length, and the larger the focal size of the generated photonic nanojets are. The numerical simulations of the photonic nanojets from the biocompatible core-shell microspheres on a Klarite substrate, which is a classical surface-enhancing Raman scattering substrate, showed that the Raman signals in the case of adding the core-shell microspheres in the system can be further enhanced 23 times in water and 108 times in air as compared in the case in which no core-shell microspheres are present. Our study of using tunable photonic nanojets produced from the biocompatible hydrogel core-shell microspheres shows potential in future biosensing applications.
机译:核-壳微球已应用于各个研究领域,尤其是,它们被用于具有适合光子应用设计的光子纳米射流的产生中。光子纳米射流是从微球的阴影面发射的狭窄且聚焦的高强度光束,有效长度可调,因此使其能够应用于生物传感技术。在本文中,我们对具有不同光学特性的生物相容性水凝胶核壳微球所产生的光子纳米射流进行了数值研究。发现壳层的存在可以显着影响光子纳米射流的特性,例如焦距,强度,有效长度和焦距。一般而言,核-壳微球越大,焦距越长,强度越强,有效长度越长,所生成的光子纳米射流的焦距就越大。在经典表面增强拉曼散射基板Klarite基板上,来自生物相容核壳微球的光子纳米射流的数值模拟显示,在系统中添加核壳微球的情况下,拉曼信号可以与不存在核-壳微球的情况相比,水进一步提高了23倍,在空气中提高了108倍。我们对使用由生物相容性水凝胶核壳微球产生的可调光子纳米射流的研究表明,在未来的生物传感应用中具有潜力。

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