Investigation of Electric Field Induced Mixing in Silicon Micro Ring Resonators

被引:0
作者
Francesco De Leonardis
Richard A. Soref
Vittorio M. N. Passaro
机构
[1] Dipartimento di Ingegneria Elettrica e dell’Informazione,Photonics Research Group
[2] The University of Massachusetts,Department of Engineering
来源
Scientific Reports | / 7卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
In this paper we present a detailed theoretical investigation of the electric field induced mixing effect, in which the up and down frequency-conversion processes are obtained by inducing an effective second order susceptibility via the periodic spatial distribution of reversed biased p-i-n junctions. The possibility of realizing a frequency generation process within an integrated microring resonator is demonstrated here, by simulations, in the silicon on insulator platform. Furthermore, general physical features have been investigated by means of a comparative analysis of the frequency generation performance as a function of the input pump power, the linear and nonlinear losses, and the coupling factors. A conversion efficiency of 627.5 %/W has been obtained for the second harmonic generation process. Therefore, an improvement of 4 to 50 times with respect to the straight waveguides is achieved, depending on the cavity ring radius. Finally, for the up/down conversion, from telecom idler to mid-IR and from Mid-IR to telecom signal, respectively, an efficiency of 85.9%/W and 454.4 %/W has been obtained in the silicon microring resonator, respectively.
引用
收藏
相关论文
共 50 条
[41]   Backcoupling manipulation in silicon ring resonators [J].
Li, Ang ;
Bogaerts, Wim .
PHOTONICS RESEARCH, 2018, 6 (06) :620-629
[42]   Photoelastic effect in silicon ring resonators [J].
Amemiya, Yoshiteru ;
Tanushi, Yuichiro ;
Tokunaga, Tomohiro ;
Yokoyama, Shin .
JAPANESE JOURNAL OF APPLIED PHYSICS, 2008, 47 (04) :2910-2914
[43]   Electric field enhancement in silicon slotted optical strip waveguides and microring resonators [J].
Radjenovic, B. ;
Milanovic, B. ;
Radmilovic-Radjenovic, M. .
PHYSICA SCRIPTA, 2012, T149
[44]   Using silicon disk resonators to measure mechanical losses caused by an electric field [J].
Klochkov, Y. Yu. ;
Prokhorov, L. G. ;
Matiushechkina, M. S. ;
Adhikari, R. X. ;
Mitrofanov, V. P. .
REVIEW OF SCIENTIFIC INSTRUMENTS, 2022, 93 (01)
[45]   Electric Field Sensors based on Hybrid Silicon and Lithium Niobate Microring Resonators [J].
Chen, Li ;
Reano, Ronald M. .
2012 CONFERENCE ON LASERS AND ELECTRO-OPTICS (CLEO), 2012,
[46]   Silicon nitride waveguides and micro ring-resonators for astronomical optical frequency comb generation [J].
Fremberg, T. ;
Boggio, J. M. Chavez ;
Bodenmueller, D. ;
Haynes, R. ;
Roth, M. M. ;
Eisermann, R. ;
Zimmermann, L. ;
Boehm, M. .
INTEGRATED OPTICS: PHYSICS AND SIMULATIONS, 2013, 8781
[47]   A Silicon Photonics Circuit Based on Micro-ring Resonators in the Instantaneous Frequency Measurement System [J].
Wang, Wanjun ;
Zhou, Jie ;
Wang, Jun ;
Feng, Junbo ;
Guo, Jin .
AOPC 2015: OPTICAL AND OPTOELECTRONIC SENSING AND IMAGING TECHNOLOGY, 2015, 9674
[48]   Silicon Integrated Continuously Tunable Dispersion Compensator Based on Cascaded Micro-Ring Resonators [J].
Liu, Yuanbin ;
Lu, Liangjun ;
Ni, Ziheng ;
Chen, Jiaqi ;
Chen, Jianping ;
Zhou, Linjie .
2022 ASIA COMMUNICATIONS AND PHOTONICS CONFERENCE, ACP, 2022, :1352-1355
[49]   Linear all-optical signal processing using silicon micro-ring resonators [J].
Ding Y. ;
Ou H. ;
Xu J. ;
Xiong M. ;
An Y. ;
Hu H. ;
Galili M. ;
Riesgo A.L. ;
Seoane J. ;
Yvind K. ;
Oxenløwe L.K. ;
Zhang X. ;
Huang D. ;
Peucheret C. .
Frontiers of Optoelectronics, 2016, 9 (03) :362-376
[50]   Linear all-optical signal processing using silicon micro-ring resonators [J].
Yunhong DING ;
Haiyan OU ;
Jing XU ;
Meng XIONG ;
Yi AN ;
Hao HU ;
Michael GALILI ;
Abel Lorences RIESGO ;
Jorge SEOANE ;
Kresten YVIND ;
Leif Katsuo OXENLWE ;
Xinliang ZHANG ;
Dexiu HUANG ;
Christophe PEUCHERET .
Frontiers of Optoelectronics, 2016, 9 (03) :362-376