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首页> 外文期刊>Advanced Optical Materials >Evolutionary Optimization of All-Dielectric Magnetic Nanoantennas
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Evolutionary Optimization of All-Dielectric Magnetic Nanoantennas

机译:全电介质磁性纳米环的进化优化

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Magnetic light and matter interactions are generally too weak to be detected, studied, and applied technologically. However, if one can increase the magnetic power density of light by several orders of magnitude, the coupling between magnetic light and matter could become of the same order of magnitude as the coupling with its electric counterpart. For that purpose, photonic nanoantennas, in particular dielectric, are proposed to engineer strong local magnetic field and therefore increase the probability of magnetic interactions. Unfortunately, dielectric designs suffer from physical limitations that confine the magnetic hot spot in the core of the material itself, preventing experimental and technological implementations. Here, it is demonstrated that evolutionary algorithms can overcome such limitations by designing new dielectric photonic nanoantennas, able to increase and extract the optical magnetic field from high refractive index materials. It is also demonstrated that the magnetic power density in an evolutionary optimized dielectric nanostructure can be increased by a factor 5 compared to state-of-the-art dielectric nanoantennas and that the fine details of the nanostructure are not critical in reaching these aforementioned features, as long as the general shape of the motif is maintained. This advocates for the feasibility of nanofabricating the optimized antennas experimentally and their subsequent application.
机译:磁光和物质相互作用通常太弱,无法检测,研究和应用。然而,如果可以通过几个数量级增加光的磁功率密度,则磁光和物质之间的耦合可能变得与与其电气对应物的耦合相同的数量级。为此目的,提出了向工程师强大的局部磁场,特别是磁性相互作用的概率来推动光子纳米纳米。不幸的是,介电设计遭受了物理限制,将磁热点限制在材料本身的核心,防止实验和技术实现。这里,证明进化算法可以通过设计新的介电光子纳米纳米来克服这种限制,能够从高折射率材料增加和提取光学磁场。还证明了与现实最新的介电纳米纳米纳米相比,进化优化的介电纳米结构中的磁功率密度可以增加因子5,并且纳米结构的细节在达到这些上述特征方面不重要,只要维持主题的一般形状。这倡导实验和后续应用的纳米制造优化天线的可行性。

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