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Dirac cones induced by accidental degeneracy in photonic crystals and zero-refractive-index materials

机译:光子晶体和零折射率材料中偶然退化引起的狄拉克锥

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摘要

A zero-refractive-index metamaterial is one in which waves do not experience any spatial phase change, and such a peculiar material has many interesting wave-manipulating properties. These materials can in principle be realized using man-made composites comprising metallic resonators7 or chiral inclusions, but metallic components have losses that compromise functionality at high frequencies. It would be highly desirable if we could achieve a zero refractive index using dielectrics alone. Here, we show that by employing accidental degeneracy, dielectric photonic crystals can be designed and fabricated that exhibit Dirac cone dispersion at the centre of the Brillouin zone at a finite frequency. In addition to many interesting properties intrinsic to a Dirac cone dispersion, we can use effective medium theory to relate the photonic crystal to a material with effectively zero permittivity and permeability. We then numerically and experimentally demonstrate in the microwave regime that such dielectric photonic crystals with reasonable dielectric constants manipulate waves as if they had near-zero refractive indices at and near the Dirac point frequency.
机译:零折射率超材料是一种其中波没有经历任何空间相变的材料,并且这种特殊的材料具有许多有趣的波操纵特性。这些材料原则上可以使用包含金属谐振器7或手性夹杂物的人造复合材料来实现,但是金属组件的损耗会损害高频下的功能。如果我们仅使用电介质就能实现零折射率,那将是非常理想的。在这里,我们表明,通过采用偶然的简并性,可以设计和制造介电光子晶体,该晶体在有限的频率下在布里渊区的中心表现出狄拉克锥扩散。除了狄拉克锥扩散固有的许多有趣特性外,我们还可以使用有效介质理论将光子晶体与介电常数和磁导率均为零的材料相关联。然后,我们在微波范围内进行数值和实验证明,具有合理介电常数的这种介电光子晶体可以操纵波,就好像它们在狄拉克点频率处或附近具有接近零的折射率。

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  • 来源
    《Nature Materials》 |2011年第8期|p.582-586|共5页
  • 作者单位

    Department of Physics, Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong, China;

    Department of Physics, Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong, China,Department of Physics,Soochow University, 1 Shizi Street, Suzhou 215006, China;

    Department of Physics, Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong, China;

    Department of Physics, Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong, China;

    Department of Physics, Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong, China;

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