An 8 x 8 InP Monolithic Tunable Optical Router (MOTOR) Packet Forwarding Chip

被引:89
作者
Nicholes, Steven C. [1 ]
Masanovic, Milan L. [2 ]
Jevremovic, Biljana [2 ]
Lively, Erica [2 ]
Coldren, Larry A. [2 ]
Blumenthal, Daniel J. [2 ]
机构
[1] Univ Calif Santa Barbara, Dept Mat, Santa Barbara, CA 93106 USA
[2] Univ Calif Santa Barbara, Dept Elect & Comp Engn, Santa Barbara, CA 93106 USA
关键词
Arrayed-waveguide grating router (AWGR); photonic integrated circuits (PIC); quantum-well intermixing (QWI); wavelength converter; PHOTONIC INTEGRATED-CIRCUITS; DESIGN; LASERS;
D O I
10.1109/JLT.2009.2030145
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
In this paper, we demonstrate single-channel operation of the first InP monolithic tunable optical router (MOTOR) chip designed to function as the packet forwarding engine of an all-optical router. The device has eight-input and eight-output ports and is capable of 40-Gb/s operation per port with bit-error rates below 1E-9. MOTOR integrates eight wavelength-tunable differential Mach-Zehnder semiconductor optical amplifier (SOA) wavelength converters with preamplifiers and a passive 8 8 arrayed-waveguide grating router. Each wavelength converter employs a widely tunable sampled-grating distributed Bragg reflector (DBR) laser for efficient wavelength switching across the C band and other functions required for 40-Gb/s wavelength conversion. Active and passive regions of the chip are defined through a robust quantum well intermixing process to optimize the gain in the wavelength converters and minimize the propagation losses in passive sections of the chip. The device is one of the most complex photonic integrated circuits (PICs) reported to date, with dimensions of 4.25 mm x 14.5 mm and more than 200 functional elements integrated on-chip. We demonstrate single-channel wavelength conversion and channel switching with this device using 2(31) - 1 pseudorandom bit sequence (PRBS) data at 40 Gb/s. A power penalty as low as 4.5 dB was achieved with less than 2-W drive power per channel.
引用
收藏
页码:641 / 650
页数:10
相关论文
共 28 条
[1]   Monolithically integrated 40-Gb/s switchable wavelength converter [J].
Bernasconi, P ;
Zhang, LM ;
Yang, WG ;
Sauer, N ;
Buhl, LL ;
Sinsky, JH ;
Kang, I ;
Chandrasekhar, S ;
Neilson, DT .
JOURNAL OF LIGHTWAVE TECHNOLOGY, 2006, 24 (01) :71-76
[2]   All-optical label swapping networks and technologies [J].
Blumenthal, DJ ;
Olsson, BE ;
Rossi, G ;
Dimmick, TE ;
Ran, L ;
Masanovi, M ;
Lavrova, O ;
Doshi, R ;
Jerphagnon, O ;
Bowers, JE ;
Kaman, V ;
Coldren, LA ;
Barton, J .
JOURNAL OF LIGHTWAVE TECHNOLOGY, 2000, 18 (12) :2058-2075
[3]   Photonic integrated circuit optical buffer for packet-switched networks [J].
Burmeister, Emily F. ;
Mack, John P. ;
Poulsen, Henrik N. ;
Masanovic, Milan L. ;
Stamenic, Biljana ;
Blumenthal, Daniel J. ;
Bowers, John E. .
OPTICS EXPRESS, 2009, 17 (08) :6629-6635
[4]   Low-loss, compact, and polarization independent PHASAR demultiplexer fabricated by using a double-etch process [J].
den Besten, JH ;
Dessens, MP ;
Herben, CGP ;
Leijtens, XJM ;
Groen, FH ;
Leys, MR ;
Smit, MK .
IEEE PHOTONICS TECHNOLOGY LETTERS, 2002, 14 (01) :62-64
[5]  
DUMMER M, 2008, P IEEE INT SEM LAS C, P145
[6]   A compact integrated InP-based single-phasar optical crossconnect [J].
Herben, CGP ;
Vreeburg, CGM ;
Maat, DHP ;
Leijtens, XJM ;
Oei, YS ;
Green, FH ;
Pedersen, JW ;
Demeester, P ;
Smit, MK .
IEEE PHOTONICS TECHNOLOGY LETTERS, 1998, 10 (05) :678-680
[7]   THEORY, DESIGN, AND PERFORMANCE OF EXTENDED TUNING RANGE SEMICONDUCTOR-LASERS WITH SAMPLED GRATINGS [J].
JAYARAMAN, V ;
CHUANG, ZM ;
COLDREN, LA .
IEEE JOURNAL OF QUANTUM ELECTRONICS, 1993, 29 (06) :1824-1834
[8]  
Kaiser R, 2002, IEICE T ELECTRON, VE85C, P970
[9]   CARRIER LOSS IN INGAASP-INP LASERS GROWN BY HYDRIDE CVD [J].
KETELSEN, LJP ;
KAZARINOV, RF .
IEEE JOURNAL OF QUANTUM ELECTRONICS, 1995, 31 (05) :811-813
[10]   Monolithically integrated 64-channel WDM channel selector with novel configuration [J].
Kikuchi, N ;
Shibata, Y ;
Okamoto, H ;
Kawaguchi, Y ;
Oku, S ;
Ishii, H ;
Yoshikuni, Y ;
Tohmori, Y .
ELECTRONICS LETTERS, 2002, 38 (07) :331-332