Integrated electro-optical phase-locked loop for high resolution optical synthesis

被引:17
|
作者
Ashtiani, Farshid [1 ]
Aflatouni, Firooz [1 ]
机构
[1] Univ Penn, Dept Elect & Syst Engn, Philadelphia, PA 19104 USA
来源
OPTICS EXPRESS | 2017年 / 25卷 / 14期
关键词
FREQUENCY COMB GENERATION; QUANTUM CASCADE LASER; SEMICONDUCTOR-LASER; LOCKING; CHIP; SPECTROSCOPY; UNCERTAINTY; RANGE; LEVEL;
D O I
10.1364/OE.25.016171
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Electrical frequency synthesizers have been in existence for several decades and are an integral part of almost every communication and sensing system. In the optical domain, however, despite promising bench-top demonstration of frequency synthesizers, large size, high-power consumption, and high-cost have significantly limited their large deployment compared to their electrical counterparts. Here we report an integrated electro-optical phase locked loop (EOPLL) as the core of an optical synthesizer where photonic and electronic devices are integrated in a standard silicon-on-insulator (SOI) process. A sophisticated integrated electronic-photonic architecture is proposed enabling reliable, low-cost, and high resolution optical synthesis. The small on-chip optical delay and electronically assisted frequency detection and acquisition provide tunable phase and frequency locking. The integrated EOPLL consumes 28.5 mW with total chip area of 2.4 mm(2) making it comparable with electrical synthesizers enabling large-scale deployment in applications such as low-cost optical spectroscopy, detection, sensing, and optical communication. (C) 2017 Optical Society of America
引用
收藏
页码:16171 / 16181
页数:11
相关论文
共 50 条
  • [21] Linearized Broadband Optical Detector: Study and Implementation of Optical Phase-Locked Loop
    Murakowski, Janusz
    Schneider, Garrett J.
    Schuetz, Christopher A.
    Shi, Shouyuan
    Prather, Dennis W.
    BROADBAND ACCESS COMMUNICATION TECHNOLOGIES VIII, 2014, 9007
  • [22] Towards chip-scale optical frequency synthesis based on optical heterodyne phase-locked loop
    Arafin, Shamsul
    Simsek, Arda
    Kim, Seong-Kyun
    Dwivedi, Sarvagya
    Liang, Wei
    Eliyahu, Danny
    Klamkin, Jonathan
    Matsko, Andrey
    Johansson, Leif
    Maleki, Lute
    Rodwell, Mark
    Coldren, Larry
    OPTICS EXPRESS, 2017, 25 (02): : 681 - 695
  • [23] Relative stability analysis of optical injection phase-locked loop
    Banerjee, Abhijit
    Biswas, Baidyanath
    OPTIK, 2017, 140 : 485 - 494
  • [24] Novel optical phase demodulator based on a sampling phase-locked loop
    Zibar, Darko
    Johansson, Leif A.
    Chou, Hsu-Feng
    Ramaswamy, Anand
    Rodwell, Mark
    Bowers, John E.
    IEEE PHOTONICS TECHNOLOGY LETTERS, 2007, 19 (9-12) : 686 - 688
  • [25] Ultra-Low Noise Optical Phase-Locked Loop
    Ayotte, Simon
    Babin, Andre
    Costin, Francois
    FIBER LASERS XI: TECHNOLOGY, SYSTEMS, AND APPLICATIONS, 2014, 8961
  • [26] FMCW light source with a feedback optical phase-locked loop
    Zeng, Yuyao
    Yang, Tianxin
    Zhang, Chenyue
    Yang, Jiewei
    Li, Jiakang
    Wang, Zhaoying
    Jia, Dongfang
    Ge, Chunfeng
    TERAHERTZ, RF, MILLIMETER, AND SUBMILLIMETER-WAVE TECHNOLOGY AND APPLICATIONS XVII, 2024, 12885
  • [27] An open and flexible digital phase-locked loop for optical metrology
    Tourigny-Plante, Alex
    Michaud-Belleau, Vincent
    Hebert, Nicolas Bourbeau
    Bergeron, Hugo
    Genest, Jerome
    Deschenes, Jean-Daniel
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2018, 89 (09):
  • [28] Note: Using an optical phase-locked loop in heterodyne velocimetry
    Tao, Tianjiong
    Wang, Xiang
    Ma, Heli
    Liu, Shenggang
    Li, Xinzhu
    Weng, Jidong
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2013, 84 (07):
  • [29] PSK OPTICAL HOMODYNE SYSTEM WITH NONLINEAR PHASE-LOCKED LOOP
    SCHOPFLIN, A
    KUGELMEIER, S
    GOTTWALD, E
    FELICIO, D
    FISCHER, G
    ELECTRONICS LETTERS, 1990, 26 (06) : 395 - 396
  • [30] An integrated electro-optical nose
    Tibuzzi, A
    Soncini, G
    D'Amico, A
    Di Natale, C
    Paolesse, R
    Macagnano, A
    Zen, A
    SENSORS AND MICROSYSTEMS, PROCEEDINGS, 2004, : 300 - 305