A three-dimensional photonic crystal operating at infrared wavelengths

被引:998
作者
Lin, SY
Fleming, JG
Hetherington, DL
Smith, BK
Biswas, R
Ho, KM
Sigalas, MM
Zubrzycki, W
Kurtz, SR
Bur, J
机构
[1] Sandia Natl Labs, Albuquerque, NM 87185 USA
[2] Iowa State Univ Sci & Technol, Ames Lab, Dept Phys & Astron, Ames, IA 50011 USA
关键词
D O I
10.1038/28343
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
The ability to confine and control light in three dimensions would have important implications for quantum optics and quantum-optical devices: the modification of black-body radiation, the localization of light to a fraction of a cubic wavelength, and thus the realization of single-mode light-emitting diodes, are but a few examples(1-3). Photonic crystals-the optical analogues of electronic crystal-provide a means for achieving these goals. Combinations of metallic and dielectric materials can be used to obtain the required three-dimensional periodic variations in dielectric constant, but dissipation due to free carrier absorption will limit application of such structures at the technologically useful infrared wavelengths(4), On the other hand, three-dimensional photonic crystals fabricated in low-loss gallium arsenide show only a weak 'stop band' (that is, range of frequencies at which propagation of light is forbidden) at the wavelengths of interest(5), Here we report the construction of a three-dimensional infrared photonic crystal on a silicon wafer using relatively standard microelectronics fabrication technology, Our crystal shows a large stop band (10-14.5 mu m), strong attenuation of light within this band (similar to 12 dB per unit cell) and a spectral response uniform to better than 1 per cent over the area of the 6-inch wafer.
引用
收藏
页码:251 / 253
页数:3
相关论文
共 17 条
[1]   Nanofabricated three dimensional photonic crystals operating at optical wavelengths [J].
Cheng, CC ;
ArbetEngels, V ;
Scherer, A ;
Yablonovitch, E .
PHYSICA SCRIPTA, 1996, T68 :17-20
[2]   DESIGN OF 3-DIMENSIONAL PHOTONIC CRYSTALS AT SUBMICRON LENGTH SCALES [J].
FAN, SH ;
VILLENEUVE, PR ;
MEADE, RD ;
JOANNOPOULOS, JD .
APPLIED PHYSICS LETTERS, 1994, 65 (11) :1466-1468
[3]   Photonic-bandgap microcavities in optical waveguides [J].
Foresi, JS ;
Villeneuve, PR ;
Ferrera, J ;
Thoen, ER ;
Steinmeyer, G ;
Fan, S ;
Joannopoulos, JD ;
Kimerling, LC ;
Smith, HI ;
Ippen, EP .
NATURE, 1997, 390 (6656) :143-145
[4]   ANOMALOUS PHOTON DIFFUSION AT THE THRESHOLD OF THE ANDERSON LOCALIZATION TRANSITION [J].
GARCIA, N ;
GENACK, AZ .
PHYSICAL REVIEW LETTERS, 1991, 66 (14) :1850-1853
[5]   PHOTONIC BAND-GAPS IN 3-DIMENSIONS - NEW LAYER-BY-LAYER PERIODIC STRUCTURES [J].
HO, KM ;
CHAN, CT ;
SOUKOULIS, CM ;
BISWAS, R ;
SIGALAS, M .
SOLID STATE COMMUNICATIONS, 1994, 89 (05) :413-416
[6]  
Hopkins F., 1998, OPT PHOTONICS NEWS, V9, P33
[7]   LOCALIZATION OF LIGHT [J].
JOHN, S .
PHYSICS TODAY, 1991, 44 (05) :32-40
[8]   Two-dimensional photonic-bandgap structures operating at near infrared wavelengths [J].
Krauss, TF ;
DeLaRue, RM ;
Brand, S .
NATURE, 1996, 383 (6602) :699-702
[9]  
Lin SY, 1996, APPL PHYS LETT, V68, P3233, DOI 10.1063/1.116558
[10]   PHOTONIC BOUND-STATES IN 2-DIMENSIONAL PHOTONIC CRYSTALS PROBED BY COHERENT-MICROWAVE TRANSIENT SPECTROSCOPY [J].
LIN, SY ;
ARJAVALINGAM, G .
JOURNAL OF THE OPTICAL SOCIETY OF AMERICA B-OPTICAL PHYSICS, 1994, 11 (10) :2124-2127