Ultrafast all-optical arithmetic logic based on hydrogenated amorphous silicon microring resonators

被引:0
作者
Gostimirovic, Dusan [1 ]
Ye, Winnie N. [1 ]
机构
[1] Carleton Univ, Dept Elect, Ottawa, ON, Canada
来源
SILICON PHOTONICS XI | 2016年 / 9752卷
关键词
All-optical logic; all-optical arithmetic; silicon photonics; Kerr effect; microring resonators; SWITCH;
D O I
10.1117/12.2211038
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
For decades, the semiconductor industry has been steadily shrinking transistor sizes to fit more performance into a single silicon-based integrated chip. This technology has become the driving force for advances in education, transportation, and health, among others. However, transistor sizes are quickly approaching their physical limits (channel lengths are now only a few silicon atoms in length), and Moore's law will likely soon be brought to a stand-still despite many unique attempts to keep it going (FinFETs, high-k dielectrics, etc.). This technology must then be pushed further by exploring (almost) entirely new methodologies. Given the explosive growth of optical-based long-haul telecommunications, we look to apply the use of high-speed optics as a substitute to the digital model; where slow, lossy, and noisy metal interconnections act as a major bottleneck to performance. We combine the (nonlinear) optical Kerr effect with a single add-drop microring resonator to perform the fundamental AND-XOR logical operations of a half adder, by all-optical means. This process is also applied to subtraction, higher-order addition, and the realization of an all-optical arithmetic logic unit (ALU). The rings use hydrogenated amorphous silicon as a material with superior nonlinear properties to crystalline silicon, while still maintaining CMOS-compatibility and the many benefits that come with it (low cost, ease of fabrication, etc.). Our method allows for multigigabit-per-second data rates while maintaining simplicity and spatial minimalism in design for high-capacity manufacturing potential.
引用
收藏
页数:8
相关论文
共 21 条
[1]   All-optical control of light on a silicon chip [J].
Almeida, VR ;
Barrios, CA ;
Panepucci, RR ;
Lipson, M .
NATURE, 2004, 431 (7012) :1081-1084
[2]  
[Anonymous], 2015, VIS NETW IND VNI
[3]   Silicon microring resonators [J].
Bogaerts, Wim ;
De Heyn, Peter ;
Van Vaerenbergh, Thomas ;
De Vos, Katrien ;
Selvaraja, Shankar Kumar ;
Claes, Tom ;
Dumon, Pieter ;
Bienstman, Peter ;
Van Thourhout, Dries ;
Baets, Roel .
LASER & PHOTONICS REVIEWS, 2012, 6 (01) :47-73
[4]  
Boyd RW, 2008, NONLINEAR OPTICS, 3RD EDITION, P1
[5]   Fast and low-power thermooptic switch on thin silicon-on-insulator [J].
Espinola, R.L. ;
Tsai, M.-C. ;
Yardley, James T. ;
Osgood Jr., R.M. .
IEEE Photonics Technology Letters, 2003, 15 (10) :1366-1368
[6]   Ultrafast All-Optical Half Adder Using Quantum-Dot Semiconductor Optical Amplifier-Based Mach-Zehnder Interferometer [J].
Gayen, Dilip Kumar ;
Bhattachryya, Arunava ;
Chattopadhyay, Tanay ;
Roy, Jitendra Nath .
JOURNAL OF LIGHTWAVE TECHNOLOGY, 2012, 30 (21) :3387-3393
[7]   CMOS photonics for high-speed interconnects [J].
Gunn, C .
IEEE MICRO, 2006, 26 (02) :58-66
[8]   AN ALL-OPTICAL SWITCH EMPLOYING THE CASCADED 2ND-ORDER NONLINEAR EFFECT [J].
IRONSIDE, CN ;
AITCHISON, JS ;
ARNOLD, JM .
IEEE JOURNAL OF QUANTUM ELECTRONICS, 1993, 29 (10) :2650-2654
[9]   Silicon photonics [J].
Jalali, Bahrain ;
Fathpour, Sasan .
JOURNAL OF LIGHTWAVE TECHNOLOGY, 2006, 24 (12) :4600-4615
[10]   All-optical half adder using cross gain modulation in semiconductor optical amplifiers [J].
Kim, Sang Hun ;
Kim, Jae Hun ;
Choi, Jae Won ;
Son, Chang Wan ;
Byun, Young Tae ;
Jhon, Young Min ;
Lee, Seok ;
Woo, Deok Ha ;
Kim, Sun Ho .
OPTICS EXPRESS, 2006, 14 (22) :10693-10698