Theoretical Design of a Pump-Free Ultrahigh Efficiency All-Optical Switching Based on a Defect Ring Optical Waveguide Network

被引:17
作者
Wu, Jiaye [1 ,2 ]
Yang, Xiangbo [1 ]
机构
[1] South China Normal Univ, Guangzhou Key Lab Special Fiber Photon Devices, Sch Informat & Optoelect Sci & Engn, Guangzhou 510006, Guangdong, Peoples R China
[2] Peking Univ, Sch Elect & Comp Engn, Lab Nonlinear Fiber Opt, Shenzhen 518055, Peoples R China
基金
中国国家自然科学基金;
关键词
all-optical switching; nonlinear optics; pump-free; ultrafast optics; ultrahigh efficiency; waveguide network; NONLINEAR REFRACTIVE-INDEX; PHOTONIC BAND-GAPS; STRONG ATTENUATIONS; TRANSMISSION;
D O I
10.1002/andp.201800258
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
A theoretical design of a defect ring optical waveguide network is proposed to construct a pump-free ultrahigh efficiency all-optical switch. This switch creates ultrastrong photonic localization and causes the nonlinear dielectric in the defect waveguide to intensely respond. At its ON state, this material defect without Kerr response helps to produce a pair of sharp pass bands in the transmission spectrum to form the dual channel of the all-optical switch. When it is switched to its OFF state, the strong Kerr response induced refractive index change in the high nonlinear defect waveguide strongly alters the spectrum, leading to a collapse of the dual channels. Network equation and generalized eigenfunction method are used to numerically calculate the optical properties of the switch and obtain a threshold control energy of about 2.90 zJ, which is eight orders of magnitude lower than previously reported. The switching efficiency/transmission ratio exceeds 3x 10(11), which is six orders of magnitude larger than previously reported. The state transition time is nearly 108 fs, which is approximately two orders of magnitude faster than the previously reported shortest time. Furthermore, the switch size can be much smaller than 2.6 mu m and will be suitable for integration.
引用
收藏
页数:7
相关论文
共 50 条
[21]   SiGeC Waveguide for All-Optical Data Switching [J].
Huang, Bo-Ji ;
Tsai, Cheng-Ting ;
Lin, Yung -Hsiang ;
Cheng, Chih-Hsien ;
Wang, Huai-Yung ;
Chi, Yu-Chieh ;
Chang, Po-Han ;
Wu, Chih-, I ;
Lin, Gong-Ru .
ACS PHOTONICS, 2018, 5 (06) :2251-+
[22]   Ultrafast nonlinear optical responses of bismuth doped silicon-rich silica films [J].
Imakita, Kenji ;
Tsuchihashi, Yuya ;
Naruiwa, Ryo ;
Fujii, Minoru ;
Sun, Hong-Tao ;
Qiu, Jianrong ;
Hayashi, Shinji .
APPLIED PHYSICS LETTERS, 2012, 101 (19)
[23]  
Leuthold J, 2010, NAT PHOTONICS, V4, P535, DOI [10.1038/nphoton.2010.185, 10.1038/NPHOTON.2010.185]
[24]   Si-rich SiNx based Kerr switch enables optical data conversion up to 12 Gbit/s [J].
Lin, Gong-Ru ;
Su, Sheng-Pin ;
Wu, Chung-Lun ;
Lin, Yung-Hsiang ;
Huang, Bo-Ji ;
Wang, Huai-Yung ;
Tsai, Cheng-Ting ;
Wu, Chih-, I ;
Chi, Yu-Chieh .
SCIENTIFIC REPORTS, 2015, 5
[25]   Electronic transport properties of Sierpinski lattices [J].
Liu, YY ;
Hou, ZL ;
Hui, PM ;
Sritrakool, W .
PHYSICAL REVIEW B, 1999, 60 (19) :13444-13452
[26]   Ultrafast all-optical switching in nanoplasmonic waveguide with Kerr nonlinear resonator [J].
Lu, Hua ;
Liu, Xueming ;
Wang, Leiran ;
Gong, Yongkang ;
Mao, Dong .
OPTICS EXPRESS, 2011, 19 (04) :2910-2915
[27]   Large photonic band gap and strong attenuation of multiconnected Peano network [J].
Lu, Jian ;
Yang, Xiangbo ;
Cai, Lianzhang .
OPTICS COMMUNICATIONS, 2012, 285 (04) :459-464
[28]   Large photonic band gaps and strong attenuations of two-segment-connected Peano derivative networks [J].
Lu, Jian ;
Yang, Xiangbo ;
Zhang, Guogang ;
Cai, Lianzhang .
PHYSICS LETTERS A, 2011, 375 (44) :3904-3909
[29]   All-Optical Switching of Two Continuous Waves in Few Layer Bismuthene Based on Spatial Cross-Phase Modulation [J].
Lu, Lu ;
Wang, Wenhui ;
Wu, Leiming ;
Jiang, Xiantao ;
Xiang, Yuanjiang ;
Li, Jianqing ;
Fan, Dianyuan ;
Zhang, Han .
ACS PHOTONICS, 2017, 4 (11) :2852-2861
[30]   INTERSPECIMEN COMPARISON OF REFRACTIVE INDEX OF FUSED SILICA [J].
MALITSON, IH .
JOURNAL OF THE OPTICAL SOCIETY OF AMERICA, 1965, 55 (10P1) :1205-&