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Topology optimization of simultaneous photonic and phononic bandgaps and highly effective phoxonic cavity

机译:同时进行光子和声子带隙和高效光子腔的拓扑优化

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By using the nondominated sorting-based genetic algorithm II, we study the topology optimization of 2D phoxonic crystals (PxC) with simultaneously maximal and complete photonic and phononic bandgaps. Our results show that the optimized structures are composed of solid lumps with narrow connections, and their Pareto-optimal solution set can keep a balance between photonic and phononic bandgap widths. Moreover, we investigate the localized states of PxC based on the optimized structure and obtain structures with more effectively multimodal photon and phonon localization. The presented structures with highly focused energy are good choices for PxC sensors. For practical application, we design a simple structure with smooth edges based on the optimized structure. It is shown that the designed simple structure has similar properties to the optimized structure, i.e., simultaneous wide phononic and photonic bandgaps and a highly effective phononic/photonic cavity. (C) 2014 Optical Society of America
机译:通过使用基于非控制的基于排序的遗传算法II,我们研究了同时具有最大和完整的光子和声子带隙的二维光子晶体(PxC)的拓扑优化。我们的结果表明,优化的结构由窄连接的固体块组成,它们的帕累托最优解集可以在光子和声子带隙宽度之间保持平衡。此外,我们基于优化的结构研究PxC的局部状态,并获得具有更有效的多峰光子和声子定位的结构。提出的具有高度集中能量的结构是PxC传感器的不错选择。对于实际应用,我们基于优化的结构设计具有平滑边缘的简单结构。结果表明,所设计的简单结构具有与优化结构相似的特性,即,同时具有宽的声子和光子带隙以及高效的声子/光子腔。 (C)2014年美国眼镜学会

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