物理
束缚态
多极展开
光子学
光子
平移对称性
量子力学
光子晶体
齐次空间
凝聚态物理
几何学
数学
作者
Z. F. Sadrieva,Kristina Frizyuk,Mihail Petrov,Yuri S. Kivshar,Andrey Bogdanov
出处
期刊:Physical review
[American Physical Society]
日期:2019-09-03
卷期号:100 (11)
被引量:229
标识
DOI:10.1103/physrevb.100.115303
摘要
Metasurfaces based on resonant subwavelength photonic structures enable novel ways of wavefront control and light focusing, underpinning a new generation of flat-optics devices. Recently emerged all-dielectric metasurfaces exhibit high-quality resonances underpinned by the physics of bound states in the continuum that drives many interesting concepts in photonics. Here we suggest a novel approach to explain the physics of bound photonic states embedded into the radiation continuum. We study dielectric metasurfaces composed of planar periodic arrays of Mie-resonant nanoparticles ("meta-atoms") which support both symmetry protected and accidental bound states in the continuum and employ the multipole decomposition approach to reveal the physical mechanism of the formation of such nonradiating states in terms of multipolar modes generated by isolated meta-atoms. Based on the symmetry of the vector spherical harmonics, we identify the conditions for the existence of bound states in the continuum originating from the symmetries of both the lattice and the unit cell. Using this formalism we predict that metasurfaces with strongly suppressed spatial dispersion can support the bound states in the continuum with the wavevectors forming a line in the reciprocal space. Our results provide a new way of designing high-quality resonant photonic systems based on the physics of bound states in the continuum.
科研通智能强力驱动
Strongly Powered by AbleSci AI