DocumentCode :
1436904
Title :
Development of Bulk Optical Negative Index Fishnet Metamaterials: Achieving a Low-Loss and Broadband Response Through Coupling
Author :
Valentine, Jason ; Shuang Zhang ; Zentgraf, Thomas ; Xiang Zhang
Author_Institution :
Nano-Scale Sci. & Eng. Center (NSEC), Univ. of California Berkeley, Berkeley, CA, USA
Volume :
99
Issue :
10
fYear :
2011
Firstpage :
1682
Lastpage :
1690
Abstract :
In this paper, we discuss the development of a bulk negative refractive index metamaterial made of cascaded “fishnet” structures, with a negative index existing over a broad spectral range. We describe in detail the design of bulk metamaterials, their fabrication and characterization, as well as the mechanism of how coupling of the unit cells can reduce loss in the material through an optical transmission-line approach. Due to the lowered loss, the metamaterial is able to achieve the highest figure of merit to date for an optical negative index metamaterial (NIM) in the absence of gain media. The increased thickness of the metamaterial also allows a direct observation of negative refraction by illuminating a prism made of the material. Such an observation results in an unambiguous demonstration of negative phase evolution of the wave propagating inside the metamaterial. Furthermore, the metamaterial can be readily accessed from free space, making it functional for optical devices. As such, bulk optical metamaterials should open up new prospects for studies of the unique optical effects associated with negative and zero index materials such as the superlens, reversed Doppler effect, backward Cerenkov radiation, optical tunneling devices, compact resonators, and highly directional sources.
Keywords :
light propagation; metamaterials; optical design techniques; optical fabrication; optical losses; optical prisms; refractive index; backward Cerenkov radiation; broadband response; bulk optical negative refractive index fishnet metamaterials; cascaded fishnet structures; compact resonators; high-directional sources; low-loss response; optical coupling; optical devices; optical prism; optical transmission-line method; optical tunneling devices; reversed Doppler effect; superlens; wave propagation; zero index materials; Magnetic materials; Metamaterials; Nanoscale devices; Optical refraction; Optical variables control; Metamaterials; nanoscale materials; negative index; optics;
fLanguage :
English
Journal_Title :
Proceedings of the IEEE
Publisher :
ieee
ISSN :
0018-9219
Type :
jour
DOI :
10.1109/JPROC.2010.2094593
Filename :
5703097
Link To Document :
بازگشت