Large group delay in a microwave metamaterial analog of electromagnetically induced reflectance

被引:50
作者
Vafapour, Zohreh [1 ,2 ]
机构
[1] Shiraz Univ, Coll Sci, Dept Phys, Shiraz 71946, Fars, Iran
[2] Johns Hopkins Univ, Dept Elect & Comp Engn, Baltimore, MD 21218 USA
关键词
TUNABLE SLOW-LIGHT; INDUCED TRANSPARENCY; BAND; RESONANCES; ANTENNAS; IMPACT;
D O I
10.1364/JOSAA.35.000417
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Recently reported metamaterial (MM) analogs of electromagnetically induced reflectance (EIR) enable a unique route to endow classical optical structures with aspects of quantum optical systems. This method opens up many fascinating prospects on novel optical components, such as slow light units, highly sensitive sensors, and non-linear devices. Here we designed and simulated a microwave MM made from aluminum thin film to mimic the EIR system. High reflectance of about 99 percent and also a large group index at the reflectance window of about 243 are demonstrated, which mainly arise from the enhanced coupling between radiative and nonradiative elements. The interaction between the elements of the unit cell, induced directly or indirectly by the incident electromagnetic wave, leads to a reflectance window, resembling the classical analog of EIR. This reflectance window, caused by the coupling of radiative-nonradiative modes, can be continuously tuned in a broad frequency regime. The strong normal phase dispersion in the vicinity of this reflectance window results in the slow light effect. This scheme provides an alternative way to achieve tunable slow light in a broad frequency band and can find important applications in active and reversibly tunable slow light devices. (C) 2018 Optical Society of America
引用
收藏
页码:417 / 422
页数:6
相关论文
共 43 条
[21]  
Liu N, 2009, NAT MATER, V8, P758, DOI [10.1038/NMAT2495, 10.1038/nmat2495]
[22]   Epsilon-near-zero material as a unique solution to three different approaches to cloaking [J].
Liznev, E. O. ;
Dorofeenko, A. V. ;
Huizhe, Liu ;
Vinogradov, A. P. ;
Zouhdi, S. .
APPLIED PHYSICS A-MATERIALS SCIENCE & PROCESSING, 2010, 100 (02) :321-325
[23]   Optical Tamm states in hetero-structures with highly dispersive planar plasmonic metamaterials [J].
Lu, Hai ;
Li, Yunhui ;
Feng, Tuanhui ;
Wang, Shaohua ;
Xue, Chunhua ;
Kang, Xiubao ;
Du, Guiqiang ;
Jiang, Haitao ;
Chen, Hong .
APPLIED PHYSICS LETTERS, 2013, 102 (11)
[24]   Surface morphology effects in a vibration based triboelectric energy harvester [J].
Nafari, A. ;
Sodano, H. A. .
SMART MATERIALS AND STRUCTURES, 2018, 27 (01)
[25]   Modeling and Performance Analysis of Metallic Plasmonic Nano-Antennas for Wireless Optical Communication in Nanonetworks [J].
Nafari, Mona ;
Jornet, Josep Miquel .
IEEE ACCESS, 2017, 5 :6389-6398
[26]   OPTICAL-PROPERTIES OF THE METALS AL, CO, CU, AU, FE, PB, NI, PD, PT, AG, TI, AND W IN THE INFRARED AND FAR INFRARED [J].
ORDAL, MA ;
LONG, LL ;
BELL, RJ ;
BELL, SE ;
BELL, RR ;
ALEXANDER, RW ;
WARD, CA .
APPLIED OPTICS, 1983, 22 (07) :1099-1119
[27]  
Papasimakis N, 2009, OPT PHOTONICS NEWS, V20, P22, DOI 10.1364/OPN.20.10.000022
[28]   Nonlinear control of tunneling through an epsilon-near-zero channel [J].
Powell, David A. ;
Alu, Andrea ;
Edwards, Brian ;
Vakil, Ashkan ;
Kivshar, Yuri S. ;
Engheta, Nader .
PHYSICAL REVIEW B, 2009, 79 (24)
[29]   Electromagnetic energy transport via linear chains of silver nanoparticles [J].
Quinten, M ;
Leitner, A ;
Krenn, JR ;
Aussenegg, FR .
OPTICS LETTERS, 1998, 23 (17) :1331-1333
[30]   Direct and accurate patterning of plasmonic nanostructures with ultrasmall gaps [J].
Si, Guangyuan ;
Zhao, Yanhui ;
Lv, Jiangtao ;
Wang, Fengwen ;
Liu, Hailong ;
Teng, Jinghua ;
Liu, Yan Jun .
NANOSCALE, 2013, 5 (10) :4309-4313