Photonic band gap atlas, formula extension, and design applications in 1D photonic crystals

IF 2.9 3区 物理与天体物理 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY Photonics and Nanostructures-Fundamentals and Applications Pub Date : 2025-02-01 DOI:10.1016/j.photonics.2025.101355
Oscar D.H. Pardo , R.R. Rey-González
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Abstract

The design and development of new photonic devices for technological applications require a deep understanding of the effects of structural properties on the resulting band gap size and its position. In this study, we perform a theoretical analysis of the behavior of photonic band gap sizes, positions, and percentages under variations of the parameters characterizing binary (two materials), ternary (three materials), and linear continuum dielectric function multilayer structures. The resulting band gap atlas shows that binary systems may suffice for most applications, but ternary systems can provide additional design flexibility if needed. Linear continuum dielectric function systems exhibit a regular pattern for all gaps studied, and this regularity is reproduced with only a few materials involved. The positions of the gaps demonstrate a very monotonous behavior across all calculations performed. Finally, we propose additional extensions of formulas commonly used in the design of Bragg mirrors/reflectors using binary materials, discussing their corresponding limitations. These results can be seen as a technological horizon for the development of photonic devices.
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光子带隙图谱,公式推广,以及一维光子晶体的设计应用
设计和开发用于技术应用的新型光子器件需要深入了解结构特性对所产生的带隙尺寸及其位置的影响。在本研究中,我们对表征二元(两种材料)、三元(三种材料)和线性连续介质介电函数多层结构的参数变化下光子带隙大小、位置和百分比的行为进行了理论分析。由此产生的带隙图谱表明,二进制系统可能足以满足大多数应用,但三元系统可以提供额外的设计灵活性,如果需要的话。线性连续介质函数系统对所研究的所有间隙都表现出规则的模式,并且这种规则只涉及少数材料。在执行的所有计算中,间隙的位置显示出非常单调的行为。最后,我们提出了使用二元材料设计布拉格镜/反射器时常用的公式的附加扩展,并讨论了它们相应的局限性。这些结果可以看作是光子器件发展的技术地平线。
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来源期刊
CiteScore
5.00
自引率
3.70%
发文量
77
审稿时长
62 days
期刊介绍: This journal establishes a dedicated channel for physicists, material scientists, chemists, engineers and computer scientists who are interested in photonics and nanostructures, and especially in research related to photonic crystals, photonic band gaps and metamaterials. The Journal sheds light on the latest developments in this growing field of science that will see the emergence of faster telecommunications and ultimately computers that use light instead of electrons to connect components.
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