Stealthy and hyperuniform isotropic photonic band gap structure in 3D

被引:0
|
作者
Siedentop, Lukas [1 ]
Lui, Gianluc [2 ]
Maret, Georg [1 ]
Chaikin, Paul M. [3 ]
Steinhardt, Paul J. [4 ]
Torquato, Salvatore [4 ,5 ,6 ,7 ]
Keim, Peter [8 ,9 ,10 ]
Florescu, Marian
机构
[1] Univ Konstanz, Dept Phys, D-78457 Constance, Germany
[2] Univ Surrey, Adv Technol Inst, Sch Math & Phys, Guildford GU2 7XH, England
[3] NYU, Dept Phys, New York, NY 10003 USA
[4] Princeton Univ, Dept Phys, Princeton, NJ 08544 USA
[5] Princeton Univ, Dept Chem, Princeton, NJ 08544 USA
[6] Princeton Univ, Princeton Mat Inst, Princeton, NJ 08544 USA
[7] Princeton Univ, Program Appl & Computat Math, Princeton, NJ 08544 USA
[8] Max Planck Inst Dynam & Selforg, D-37077 Gottingen, Germany
[9] Univ Gottingen, Inst Dynam Complex Syst, D-37077 Gottingen, Germany
[10] Heinrich Heine Univ Dusseldorf, Inst Expt Phys Condensed Matter, D-40225 Dusseldorf, Germany
来源
PNAS NEXUS | 2024年 / 3卷 / 09期
基金
英国工程与自然科学研究理事会;
关键词
stealthy; hyperuniform; isotropic photonic band gap; CRYSTALS;
D O I
10.1093/pnasnexus/pgae383
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
In photonic crystals, the propagation of light is governed by their photonic band structure, an ensemble of propagating states grouped into bands, separated by photonic band gaps. Due to discrete symmetries in spatially strictly periodic dielectric structures their photonic band structure is intrinsically anisotropic. However, for many applications, such as manufacturing artificial structural color materials or developing photonic computing devices, but also for the fundamental understanding of light-matter interactions, it is of major interest to seek materials with long range nonperiodic dielectric structures which allow the formation of isotropic photonic band gaps. Here, we report the first ever 3D isotropic photonic band gap for an optimized disordered stealthy hyperuniform structure for microwaves. The transmission spectra are directly compared to a diamond pattern and an amorphous structure with similar node density. The band structure is measured experimentally for all three microwave structures, manufactured by 3D laser printing for metamaterials with refractive index up to n=2.1. Results agree well with finite-difference-time-domain numerical investigations and a priori calculations of the band gap for the hyperuniform structure: the diamond structure shows gaps but being anisotropic as expected, the stealthy hyperuniform pattern shows an isotropic gap of very similar magnitude, while the amorphous structure does not show a gap at all. Since they are more easily manufactured, prototyping centimeter scaled microwave structures may help optimizing structures in the technologically very interesting region of infrared.
引用
收藏
页数:9
相关论文
共 50 条
  • [31] Dual photonic band gap and reversible tuning of 3D photonic crystal fabricated by multiphoton polymerization with photoresponsive polymer
    Ya, Qi
    Chen, Wei-Qiang
    Dong, Xian-Zi
    Rodgers, Thomas
    Nakanishi, Sana
    Shoji, Satoru
    Duan, Xuan-Ming
    Kawata, Satoshi
    APPLIED PHYSICS A-MATERIALS SCIENCE & PROCESSING, 2008, 93 (02): : 393 - 398
  • [32] Strong Photonic-Band-Gap Effect on the Spontaneous Emission in 3D Lead Halide Perovskite Photonic Crystals
    Zhou, Xue
    Li, Mingzhu
    Wang, Kang
    Li, Huizeng
    Li, Yanan
    Li, Chang
    Yan, Yongli
    Zhao, Yongsheng
    Song, Yanlin
    CHEMPHYSCHEM, 2018, 19 (16) : 2101 - 2106
  • [33] Dual photonic band gap and reversible tuning of 3D photonic crystal fabricated by multiphoton polymerization with photoresponsive polymer
    Qi Ya
    Wei-Qiang Chen
    Xian-Zi Dong
    Thomas Rodgers
    Sana Nakanishi
    Satoru Shoji
    Xuan-Ming Duan
    Satoshi Kawata
    Applied Physics A, 2008, 93 : 393 - 398
  • [34] Transversely Quasicrystallographic 3D Photonic Chiral Lattices: Polarization-controllable Complex Photonic Band gap structures
    Xavier, Jolly
    Joseph, Joby
    2012 PHOTONICS GLOBAL CONFERENCE (PGC), 2012,
  • [35] Constructing 3D crystal templates for photonic band gap materials using holographic optical tweezers
    Benito, D. C.
    Carberry, D. M.
    Simpson, S. H.
    Gibson, G. M.
    Padgett, M. J.
    Rarity, J. G.
    Miles, M. J.
    Hanna, S.
    OPTICS EXPRESS, 2008, 16 (17) : 13005 - 13015
  • [36] Absorption Enhancement of a Thin Silicon Film with a 3D Photonic band gap crystal back reflector
    Devashish, D.
    Saive, R.
    van der Vegt, J. J. W.
    Vos, Willem L.
    2019 CONFERENCE ON LASERS AND ELECTRO-OPTICS EUROPE & EUROPEAN QUANTUM ELECTRONICS CONFERENCE (CLEO/EUROPE-EQEC), 2019,
  • [37] Enhanced energy density and optical absorption in a 3D photonic band gap cavity with finite support
    Devashish, D.
    Ojambati, O. S.
    Hasan, Shakeeb B.
    van der Vegt, J. J. W.
    Vos, Willem L.
    2019 CONFERENCE ON LASERS AND ELECTRO-OPTICS EUROPE & EUROPEAN QUANTUM ELECTRONICS CONFERENCE (CLEO/EUROPE-EQEC), 2019,
  • [38] Enhanced absorption in thin and ultrathin silicon films by 3D photonic band gap back reflectors
    Sharma, Devashish
    Bin Hasan, Shakeeb
    Saive, Rebecca
    van der Vegt, Jaap J. W.
    Vos, Willem L.
    OPTICS EXPRESS, 2021, 29 (25): : 41023 - 41047
  • [39] Study on the transmission characteristics and band structure of 2D and 3D plasma photonic crystals
    Liang, Yichao
    Liang, Zhuqing
    Liu, Zhen
    Jun, Peng
    Qiu, Dianqing
    OPTICS EXPRESS, 2023, 31 (02) : 776 - 791
  • [40] 3D BAND STRUCTURE OF CR
    ASDENTE, M
    FRIEDEL, J
    PHYSICAL REVIEW, 1961, 124 (02): : 384 - &