Microring and microdisk optical resonators using silicon nanocrystals and erbium prepared using silicon technology

被引:23
作者
Gardner, DS [1 ]
Brongersma, ML
机构
[1] Intel Corp, Circuits Res, Microproc Technol Labs, Santa Clara, CA 95052 USA
[2] Stanford Univ, Stanford, CA 94305 USA
关键词
D O I
10.1016/j.optmat.2004.08.017
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
A methodology for the integration of narrow-linewidth light sources monolithically onto silicon using silicon process technology is presented. Microcavity resonator based narrow-linewidth light sources were designed and modeled using the 3-D full-wave finite-difference time-domain (FDTD) method of solving Maxwell's equations. The microcavity confines light to a small modal volume by resonant recirculation in a structure with low roundtrip optical loss. The resonators were formed in close proximity to waveguides used for evanescent-wave coupling of light out of the microcavity. Waveguides using Si-nanocrystals in SiO2 are difficult to couple to planar microdisks because the mode extends deep into the oxide, whereas simulations show that microresonators using SiNx can. The coupling efficiency between the resonator and the single-mode waveguides was optimized by varying the gap size and the waveguide width and thickness. Luminescence from silicon nanoparticles in both SiO2 and SiN, films was studied. Process optimization for forming Si nanoparticles in SiO2 or SiNx including the effects of hydrogen annealing and the preparation of SiNx films with excess Si by various techniques (CVD and Si ion implantation) was performed. High-index-contrast microcavity resonators were fabricated using SiNx on SiO2 with silicon nanoparticles and imaged using atomic force microscopy. The structures include microdisk and microring cavities doped with silicon nanoparticles with and without erbium. (c) 2004 Elsevier B.V. All rights reserved.
引用
收藏
页码:804 / 811
页数:8
相关论文
共 28 条
[1]   Ultra-high-Q toroid microcavity on a chip [J].
Armani, DK ;
Kippenberg, TJ ;
Spillane, SM ;
Vahala, KJ .
NATURE, 2003, 421 (6926) :925-928
[2]   LOW-THRESHOLD ND-DOPED SILICA PLANAR WAVE-GUIDE LASER [J].
BONAR, JR ;
BEBBINGTON, JA ;
AITCHISON, JS ;
MAXWELL, GD ;
AINSLIE, BJ .
ELECTRONICS LETTERS, 1994, 30 (03) :229-230
[3]   Tuning the emission wavelength of Si nanocrystals in SiO2 by oxidation [J].
Brongersma, ML ;
Polman, A ;
Min, KS ;
Boer, E ;
Tambo, T ;
Atwater, HA .
APPLIED PHYSICS LETTERS, 1998, 72 (20) :2577-2579
[4]  
GARDNER DS, 2002, NATO SCI SERIES
[5]   An anisotropic perfectly matched layer-absorbing medium for the truncation of FDTD lattices [J].
Gedney, SD .
IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 1996, 44 (12) :1630-1639
[6]  
Hagness S. C., 1997, Computational Electromagnetics and Its Applications, P229
[7]   FDTD microcavity simulations: Design and experimental realization of waveguide-coupled single-mode ring and whispering-gallery-mode disk resonators [J].
Hagness, SC ;
Rafizadeh, D ;
Ho, ST ;
Taflove, A .
JOURNAL OF LIGHTWAVE TECHNOLOGY, 1997, 15 (11) :2154-2165
[8]   NEODYMIUM-DOPED SILICA OPTICAL WAVE-GUIDE LASER ON SILICON SUBSTRATE [J].
HIBINO, Y ;
KITAGAWA, T ;
SHIMIZU, M ;
HANAWA, F ;
SUGITA, A .
IEEE PHOTONICS TECHNOLOGY LETTERS, 1989, 1 (11) :349-350
[9]  
KIK P, NATO SCI SERIES 2, V93, P383
[10]   Strong exciton-erbium coupling in Si nanocrystal-doped SiO2 [J].
Kik, PG ;
Brongersma, ML ;
Polman, A .
APPLIED PHYSICS LETTERS, 2000, 76 (17) :2325-2327