Ultra-high-Q toroid microcavity on a chip

被引:0
作者
D. K. Armani
T. J. Kippenberg
S. M. Spillane
K. J. Vahala
机构
[1] California Institute of Technology,Department of Applied Physics
来源
Nature | 2003年 / 421卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
The circulation of light within dielectric volumes enables storage of optical power near specific resonant frequencies and is important in a wide range of fields including cavity quantum electrodynamics1,2, photonics3,4, biosensing5,6 and nonlinear optics7,8,9. Optical trajectories occur near the interface of the volume with its surroundings, making their performance strongly dependent upon interface quality. With a nearly atomic-scale surface finish, surface-tension-induced microcavities such as liquid droplets or spheres10,11,12,13 are superior to all other dielectric microresonant structures when comparing photon lifetime or, equivalently, cavity Q factor. Despite these advantageous properties, the physical characteristics of such systems are not easily controlled during fabrication. It is known that wafer-based processing14 of resonators can achieve parallel processing and control, as well as integration with other functions. However, such resonators-on-a-chip suffer from Q factors that are many orders of magnitude lower than for surface-tension-induced microcavities, making them unsuitable for ultra-high-Q experiments. Here we demonstrate a process for producing silica toroid-shaped microresonators-on-a-chip with Q factors in excess of 100 million using a combination of lithography, dry etching and a selective reflow process. Such a high Q value was previously attainable only by droplets or microspheres and represents an improvement of nearly four orders of magnitude over previous chip-based resonators.
引用
收藏
页码:925 / 928
页数:3
相关论文
共 50 条
[41]   Trapping of ultrashort optical pulse into ultra-high-Q photonic nanocavity [J].
Tanaka, Y ;
Asano, T ;
Noda, S .
2005 PACIFIC RIM CONFERENCE ON LASERS AND ELECTRO-OPTICS, 2005, :614-615
[42]   Silicon-chip-based Brillouin lasers and soliton microcombs using an integrated ultra-high-Q silica resonator [J].
Vahala, K. ;
Yang, K-Y ;
Oh, D-Y ;
Lee, S-H ;
Yang, Q-F ;
Yi, X. ;
Shen, B. ;
Wang, H. .
2019 OPTICAL FIBER COMMUNICATIONS CONFERENCE AND EXHIBITION (OFC), 2019,
[43]   Ultra-high-Q microcavity operation in H2O and D2O -: art. no. 151118 [J].
Armani, AM ;
Armani, DK ;
Min, B ;
Vahala, KJ ;
Spillane, SM .
APPLIED PHYSICS LETTERS, 2005, 87 (15) :1-3
[44]   Controllable Coupling of an Ultra-High-Q Microtoroid Cavity with Monolayer Graphene [J].
Zhang, Xun ;
Fan, Huibo ;
Jiang, Xiaoshun ;
Xiao, Min .
2017 CONFERENCE ON LASERS AND ELECTRO-OPTICS (CLEO), 2017,
[45]   Brillouin Lasing in Ultra-High-Q Lithium Fluoride Disk Resonators [J].
Diallo, Souleymane ;
Lin, Guoping ;
Martinenghi, Romain ;
Furfaro, Luca ;
Jacquot, Maxime ;
Chembo, Yanne K. .
IEEE PHOTONICS TECHNOLOGY LETTERS, 2016, 28 (09) :955-958
[46]   Single Nanoparticle Detection by Mode Splitting in Ultra-High-Q Microtoroid [J].
Zhu, Jiangang ;
Xiao, Yun-Feng ;
Li, Lin ;
He, Lina ;
Chen, Da-Ren ;
Yang, Lan .
2009 CONFERENCE ON LASERS AND ELECTRO-OPTICS AND QUANTUM ELECTRONICS AND LASER SCIENCE CONFERENCE (CLEO/QELS 2009), VOLS 1-5, 2009, :419-+
[47]   Ultra-high-Q Optoelectronic Oscillator based on Bilaterally Coupled Loops [J].
Charalambous, G. ;
Hasanuzzaman, G. K. M. ;
Perentos, A. ;
Iezekiel, S. .
2016 IEEE INTERNATIONAL TOPICAL MEETING ON MICROWAVE PHOTONICS (MWP), 2016, :255-258
[48]   Free ultra-high-Q microtoroid:: a tool for designing photonic devices [J].
Hossein-Zadeh, Mani ;
Vahala, Kerry J. .
OPTICS EXPRESS, 2007, 15 (01) :166-175
[49]   An experimental, ultra-high-Q, VHF receiver front-end [J].
Kuhn, WB ;
ElshabiniRiad, A ;
Stephenson, FW .
ISCAS 96: 1996 IEEE INTERNATIONAL SYMPOSIUM ON CIRCUITS AND SYSTEMS - CIRCUITS AND SYSTEMS CONNECTING THE WORLD, VOL 1, 1996, :353-356
[50]   Role of geometry in optothermal response of toroidal ultra-high-Q cavities [J].
Soltani, Soheil ;
Armani, Andrea M. .
LASER RESONATORS, MICRORESONATORS, AND BEAM CONTROL XVII, 2015, 9343