:Dynamically reconfigurable topological edge state in phase change photonic crystals论文

:Dynamically reconfigurable topological edge state in phase change photonic crystals论文

本文主要研究内容

作者(2019)在《Dynamically reconfigurable topological edge state in phase change photonic crystals》一文中研究指出:The observation of topological edge states(TESs) revolutionized our understanding of scattering and propagation of electromagnetic(EM) waves. Supported by topological robustness, the TES at the interface between trivial and non-trivial insulators was not reflected from the structural disorders and imperfections. Recently topological photonic crystals(PhCs) were demonstrated to obtain remarkable one-way propagation of the TES, having the advantages of lossless propagation, dense integration, and high fabrication tolerance over conventional PhCs. Nevertheless, the lack of reversible switching of TES possesses significant limitations in helicity/spin filtering and tunable photonic devices. We proposed a topological PhC based on a prototypical phase-change material, Ge2Sb2Te5(GST225) to solve the problem. We find that at a particular frequency, the TES within the structure can be reversibly switched between ‘‘on"and ‘‘off" by transiting the GST225 structural state between amorphous and crystalline. Moreover, the topology of the PhC was maintained since the tuning of TES was achieved by varying the refractive index of GST225 instead of the structural geometry. This provides a continuous change of the spectral position of the photonic bandgap and TES by gradually crystallising the GST225. We show that the phase change of GST225 from amorphous to crystalline and vice versa can be engineered in nanoseconds. Our proof of concept may offer a platform for dynamically tuning the TESs that might otherwise be challenging to attain in photonic systems. We expect it to have potential applications for photonic devices in topological optical circuits and scatter-free one-way light propagation.

Abstract

The observation of topological edge states(TESs) revolutionized our understanding of scattering and propagation of electromagnetic(EM) waves. Supported by topological robustness, the TES at the interface between trivial and non-trivial insulators was not reflected from the structural disorders and imperfections. Recently topological photonic crystals(PhCs) were demonstrated to obtain remarkable one-way propagation of the TES, having the advantages of lossless propagation, dense integration, and high fabrication tolerance over conventional PhCs. Nevertheless, the lack of reversible switching of TES possesses significant limitations in helicity/spin filtering and tunable photonic devices. We proposed a topological PhC based on a prototypical phase-change material, Ge2Sb2Te5(GST225) to solve the problem. We find that at a particular frequency, the TES within the structure can be reversibly switched between ‘‘on"and ‘‘off" by transiting the GST225 structural state between amorphous and crystalline. Moreover, the topology of the PhC was maintained since the tuning of TES was achieved by varying the refractive index of GST225 instead of the structural geometry. This provides a continuous change of the spectral position of the photonic bandgap and TES by gradually crystallising the GST225. We show that the phase change of GST225 from amorphous to crystalline and vice versa can be engineered in nanoseconds. Our proof of concept may offer a platform for dynamically tuning the TESs that might otherwise be challenging to attain in photonic systems. We expect it to have potential applications for photonic devices in topological optical circuits and scatter-free one-way light propagation.

论文参考文献

  • [1].Realization of a three-dimensional photonic topological insulator[J].   Science Foundation in China.2019(01)
  • [2].Switchable slow light rainbow trapping and releasing in strongly coupling topological photonic systems[J]. JIANFENG CHEN,WENYAO LIANG,ZHI-YUAN LI.  Photonics Research.2019(09)
  • [3].Tip-induced or enhanced superconductivity:a way to detect topological superconductivity[J]. He Wang,Lei Ma,Jian Wang.  Science Bulletin.2018(17)
  • [4].Superconductivity in topological semimetals[J]. Jian Wang.  National Science Review.2019(02)
  • [5].Automatic search for topological materials shifts paradigm[J]. Chen Fang.  National Science Review.2019(02)
  • [6].Making the world from topological order[J]. Philip Ball.  National Science Review.2019(02)
  • [7].Experimental evidence of anomalously large superconducting gap on topological surface state of b-Bi2Pd film[J]. Jian-Yu Guan,Lingyuan Kong,Li-Qin Zhou,Yi-Gui Zhong,Hang Li,Hai-Jiang Liu,Cen-Yao Tang,Da-Yu Yan,Fa-Zhi Yang,Yao-Bo Huang,You-Guo Shi,Tian Qian,Hong-Ming Weng,Yu-Jie Sun,Hong Ding.  Science Bulletin.2019(17)
  • [8].The global monopole spacetime and its topological charge[J]. 谭鸿威,杨锦波,张靖仪,何唐梅.  Chinese Physics B.2018(03)
  • [9].Towards the manipulation of topological states of matter: a perspective from electron transport[J]. Cheng Zhang,Hai-Zhou Lu,Shun-Qing Shen,Yong P.Chen,Faxian Xiu.  Science Bulletin.2018(09)
  • [10].Boosting the discovery of 3D topological materials: mixing chemistry with physics via a two-step computational screening strategy[J]. Xing-Qiu Chen.  National Science Review.2018(03)
  • 论文详细介绍

    论文作者分别是来自Science Bulletin的,发表于刊物Science Bulletin2019年12期论文,是一篇关于,Science Bulletin2019年12期论文的文章。本文可供学术参考使用,各位学者可以免费参考阅读下载,文章观点不代表本站观点,资料来自Science Bulletin2019年12期论文网站,若本站收录的文献无意侵犯了您的著作版权,请联系我们删除。

    标签:;  

    :Dynamically reconfigurable topological edge state in phase change photonic crystals论文
    下载Doc文档

    猜你喜欢