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耦合异质结构光子晶体波导中的共振光子态。

Resonant photonic States in coupled heterostructure photonic crystal waveguides.

机构信息

Department of Physics and Astronomy, The University of Western Ontario, London, Ontario, N6A 3K7, Canada.

出版信息

Nanoscale Res Lett. 2010 Feb 9;5(4):741-6. doi: 10.1007/s11671-010-9551-z.

Abstract

In this paper, we study the photonic resonance states and transmission spectra of coupled waveguides made from heterostructure photonic crystals. We consider photonic crystal waveguides made from three photonic crystals A, B and C, where the waveguide heterostructure is denoted as B/A/C/A/B. Due to the band structure engineering, light is confined within crystal A, which thus act as waveguides. Here, photonic crystal C is taken as a nonlinear photonic crystal, which has a band gap that may be modified by applying a pump laser. We have found that the number of bound states within the waveguides depends on the width and well depth of photonic crystal A. It has also been found that when both waveguides are far away from each other, the energies of bound photons in each of the waveguides are degenerate. However, when they are brought close to each other, the degeneracy of the bound states is removed due to the coupling between them, which causes these states to split into pairs. We have also investigated the effect of the pump field on photonic crystal C. We have shown that by applying a pump field, the system may be switched between a double waveguide to a single waveguide, which effectively turns on or off the coupling between degenerate states. This reveals interesting results that can be applied to develop new types of nanophotonic devices such as nano-switches and nano-transistors.

摘要

在本文中,我们研究了由异质结构光子晶体制成的耦合波导的光子共振态和传输谱。我们考虑了由三种光子晶体 A、B 和 C 制成的光子晶体波导,其中波导异质结构表示为 B/A/C/A/B。由于能带结构工程,光被限制在晶体 A 内,因此晶体 A 充当波导。这里,我们将光子晶体 C 视为非线性光子晶体,其带隙可以通过施加泵浦激光来修改。我们发现,波导内束缚态的数量取决于光子晶体 A 的宽度和势阱深度。我们还发现,当两个波导彼此远离时,每个波导中的束缚光子的能量是简并的。然而,当它们彼此靠近时,由于它们之间的耦合,束缚态的简并性被消除,导致这些态分裂成对。我们还研究了泵浦场对光子晶体 C 的影响。我们表明,通过施加泵浦场,系统可以在双波导和单波导之间切换,这有效地开启或关闭简并态之间的耦合。这揭示了有趣的结果,可以应用于开发新型的纳米光子器件,如纳米开关和纳米晶体管。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4a72/3241141/6ceab98cf17e/1556-276X-5-741-1.jpg

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