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Microspheres Formation in a Glass–Metal Hybrid Fiber System: Application in Optical Microwires

机译:玻璃-金属混合纤维系统中的微球形成:在光学微丝中的应用

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摘要

Multicomponent optical fibers with incorporated metals are promising photonic platforms for engineering of tailored plasmonic structures by laser micromachining or thermal processing. It has been observed that during thermal processing microfluidic phenomena lead to the formation of embedded micro- and nanostructures and spheres, thus triggering the technological motivation for their theoretical investigation, especially in the practical case of noble metal/glass composites that have not yet been investigated. Implemented microwires of gold core and glass cladding, recently studied experimentally, are considered as a reference validation platform. The Plateau-Rayleigh instability in such hybrid fibers is theoretically investigated by inducing surface tension perturbations and by comparing them to the Tomotika instability theory. The continuous-core breakup time was calculated via Finite Element Method (FEM) simulations for different temperatures and was found to be considerably higher to Tomotika’s model, while the final sphere diameter is a linear function of the initial core radius. Different sinusoidal perturbation parameters were considered, showing significant impact in the characteristics of formed spherical features. The theoretical results were in close agreement with previous experimental observations expected to assist in the understanding of the processes involved, providing insight into the engineering of fibers, both in the initial drawing process and post processing.
机译:掺有金属的多组分光纤是有前途的光子平台,可用于通过激光微加工或热处理来设计定制的等离激元结构。已经观察到,在热处理过程中,微流体现象导致形成嵌入的微结构和纳米结构以及球体,从而触发了对其进行理论研究的技术动力,尤其是在尚未研究的贵金属/玻璃复合材料的实际情况下。最近通过实验研究的已实现的金芯和玻璃包层微线被认为是参考验证平台。通过诱导表面张力扰动并将其与Tomotika不稳定性理论进行比较,从理论上研究了这种混合纤维中的Plateau-Rayleigh不稳定性。通过有限元方法(FEM)模拟计算了不同温度下的连续铁心破裂时间,发现该时间比Tomotika模型高得多,而最终球体直径是初始铁心半径的线性函数。考虑了不同的正弦波摄动参数,对形成的球形特征的特性显示出显着影响。理论结果与以前的实验观察结果非常吻合,有望帮助理解所涉及的过程,从而在初始拉伸过程和后处理过程中提供对纤维工程学的见识。

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