Slow-light optical buffers: Capabilities and fundamental limitations

被引:422
作者
Tucker, RS [1 ]
Ku, PC
Chang-Hasnain, CJ
机构
[1] Univ Melbourne, ARC Special Res Ctr Ultra Broadband Informat Netw, Dept Elect & Elect Engn, Melbourne, Vic 3010, Australia
[2] Intel Corp, Santa Clara, CA 95052 USA
[3] Univ Calif Berkeley, EECS Dept, Berkeley, CA 94720 USA
基金
澳大利亚研究理事会;
关键词
electromagnetically induced transparency (EIT); optical delay lines; optical memories; optical propagation in dispersive media; photonic crystals (PCs); slow light;
D O I
10.1109/JLT.2005.853125
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
This paper presents an analysis of optical buffers based on slow-light optical delay lines. The focus of this paper is on slow-light delay lines in which the group velocity is reduced using linear processes, including electromagnetically induced transparency (EIT), population oscillations (POs), and microresonator-based photonic-crystal (PC) filters. We also consider slow-light delay lines in which the group velocity is reduced by an adiabatic process of bandwidth compression. A framework is developed for comparing these techniques and identifying fundamental physical limitations of linear slow-light technologies. It is shown that slow-light delay lines have limited capacity and delay-bandwidth product. In principle, the group velocity in slow-light delay lines can be made to approach zero. But very slow group velocity always comes at the cost of very low bandwidth or throughput. In many applications, miniaturization of the delay line is an important consideration. For all delay-line buffers, the minimum physical size of the buffer for a given number of buffered data bits is ultimately limited by the physical size of each stored bit. We show that in slow-light optical buffers, the minimum achievable size of I b is approximately equal to the wavelength of light in the buffer. We also compare the capabilities and limitations of a range of delay-line buffers, investigate the impact of waveguide losses on the buffer capacity, and look at the applicability of slow-light delay lines in a number of applications.
引用
收藏
页码:4046 / 4066
页数:21
相关论文
共 31 条
[11]   Slow light in semiconductor quantum wells [J].
Ku, PC ;
Sedgwick, F ;
Chang-Hasnain, CJ ;
Palinginis, P ;
Li, T ;
Wang, HL ;
Chang, SW ;
Chuang, SL .
OPTICS LETTERS, 2004, 29 (19) :2291-2293
[12]   Variable semiconductor all-optical buffer [J].
Ku, PC ;
Chang-Hasnain, CJ ;
Chuang, SL .
ELECTRONICS LETTERS, 2002, 38 (24) :1581-1583
[13]  
KU PC, 2005, P OPT FIB COMM C OFC, P2
[14]  
KU PC, 2003, OFC, V1, P76
[15]   Optical delay lines based on optical filters [J].
Lenz, G ;
Eggleton, BJ ;
Madsen, CK ;
Slusher, RE .
IEEE JOURNAL OF QUANTUM ELECTRONICS, 2001, 37 (04) :525-532
[16]   Observation of coherent optical information storage in an atomic medium using halted light pulses [J].
Liu, C ;
Dutton, Z ;
Behroozi, CH ;
Hau, LV .
NATURE, 2001, 409 (6819) :490-493
[17]   Linear and nonlinear pulse propagation in coupled resonator slow-wave optical structures [J].
Melloni, A ;
Morichetti, F ;
Martinelli, M .
OPTICAL AND QUANTUM ELECTRONICS, 2003, 35 (04) :365-379
[18]   Coupled resonator optical waveguides [J].
Mookherjea, S ;
Yariv, A .
IEEE JOURNAL OF SELECTED TOPICS IN QUANTUM ELECTRONICS, 2002, 8 (03) :448-456
[19]  
PIERCE JR, 1950, TRAVELLING WAVE TUBE
[20]   Optical packet synchronizer using wavelength and space switching [J].
Sakamoto, T ;
Okada, A ;
Hirayama, M ;
Sakai, Y ;
Moriwaki, O ;
Ogawa, I ;
Sato, R ;
Noguchi, K ;
Matsuoka, M .
IEEE PHOTONICS TECHNOLOGY LETTERS, 2002, 14 (09) :1360-1362