Chin. Phys. Lett.  2007, Vol. 24 Issue (4): 975-978    DOI:
Original Articles |
Linewidth Narrowing in Microstrip Resonator Using Effective Highly Dispersive Medium
LI Yun-Hui1;JIANG Hai-Tao 1,2;HE Li 1; LI Hong-Qiang 1;ZHANG Ye-Wen 1;CHEN Hong 1;ZHU Shi-Yao 3
1Pohl Institute of Solid State Physics, Tongji University, Shanghai 2000922State Key Laboratory of Functional Materials for Informatics, Shanghai Institute of Microsystem and Information Technology, Chinese Academy of Sciences, Shanghai 2000503Department of Physics, Hong Kong Baptist University, Kowloon Tong, Hong Kong
Cite this article:   
LI Yun-Hui, JIANG Hai-Tao, HE Li et al  2007 Chin. Phys. Lett. 24 975-978
Download: PDF(435KB)  
Export: BibTeX | EndNote | Reference Manager | ProCite | RefWorks
Abstract An effective highly dispersive medium is proposed by utilizing strong dispersion of localized defect mode in a microstrip photonic crystal. Linewidth narrowing in a composite microstrip resonator using this photonic-crystal-based effective medium is investigated and its dependence on the structure parameters is presented. Both numerical simulations and experimental results demonstrate that compared to the traditional resonator, the Q-factor increases much more quickly and the peak transmission decreases more slowly at the same time for the composite resonator.
Keywords: 42.70.Qs      41.20.Jb     
Received: 13 December 2006      Published: 26 March 2007
PACS:  42.70.Qs (Photonic bandgap materials)  
  41.20.Jb (Electromagnetic wave propagation; radiowave propagation)  
TRENDMD:   
URL:  
https://cpl.iphy.ac.cn/       OR      https://cpl.iphy.ac.cn/Y2007/V24/I4/0975
Service
E-mail this article
E-mail Alert
RSS
Articles by authors
LI Yun-Hui
JIANG Hai-Tao
HE Li
LI Hong-Qiang
ZHANG Ye-Wen
CHEN Hong
ZHU Shi-Yao
[1] Akahane Y, Asano T, Song B S and Noda S 2003 Nature 425944
[2] Jugessur A S, Pottier P and De La Rue R M 2003 Electron.Lett. 39 367
[3] Lalanne P, Mias S and Hugonin J P 2004 Opt. Exp. 12 458
[4] Soljacic M, Lidorikis E, Hau L V and Joannopoulos J D 2005 Phys. Rev. E 71 026602
[5] Muller G, Muller M, Wicht A, Rinkleff R H and Danzmann K 1997 Phys. Rev. A 56 2385
[6] Lukin M D, Fleischhauer M, Scully M O and Velichansky V L 1998 Opt. Lett. 23 295
[7] Wang H, Goorskey D J, Burkett W H and Xiao M 2000 Opt. Lett. 25 1732
[8] Yablonovitch E 1987 Phys. Rev. Lett. 58 2059 John S 1987 Phys. Rev. Lett. 58 2486
[9] Chen S, Qian B, Wei J W, Chen K J, Xu J, Li W and Huang X F 2005 Chin. Phys. Lett. 22 230
[10] Wang C X, Xu X S, Li F, Du W, Xiong G G, Liu Y L and Chen H D 2006 Chin. Phys. Lett. 23 2472
[11] Notomi M, Yamada K, Shinya A, Takahashi J, Takahashi C andYokohama I 2001 Phys. Rev. Lett. 87 253902
[12] Gersen H, Karle T J, Engelen R J P, Bogaerts W, Korterik J P, vanHulst N F, Krauss T F and Kuipers L 2005 Phys. Rev. Lett. 94 073903
[13] Yanik M F, Suh W, Wang Z and Fan S 2004 Phys. Rev. Lett. 93 233903
[14] Xu Q, Sandhu S, Povinelli M L, Shakya J, Fan S and Lipson M 2006 Phys. Rev. Lett. 96 123901
[15] Scalora M, Flynn R J, Reinhardt S B, Fork R L, Bloemer M J, TocciM D, Bowden C M, Ledbetter H S, Bendickson J M, Dowling J P and LeavittR P 1996 Phys. Rev. E 54 R1078
[16] Liu N H, Zhu S Y, Chen H and Wu X 2002 Phys. Rev. E 65046607
Related articles from Frontiers Journals
[1] ZHOU Hai-Chun, YANG Guang, WANG Kai, LONG Hua, LU Pei-Xiang. Coupled Optical Tamm States in a Planar Dielectric Mirror Structure Containing a Thin Metal Film[J]. Chin. Phys. Lett., 2012, 29(6): 975-978
[2] ZHOU Yan, YIN Li-Qun. Self-Detection of Leaking Pipes by One-Dimensional Photonic Crystals[J]. Chin. Phys. Lett., 2012, 29(6): 975-978
[3] ZHANG Li-Wei, ZHANG Ye-Wen, HE Li, WANG You-Zhen. Experimental Study of Tunneling modes in Photonic Crystal Heterostructure Consisting of Single-Negative Materials[J]. Chin. Phys. Lett., 2012, 29(6): 975-978
[4] HAN Ying,**,HOU Lan-Tian,ZHOU Gui-Yao,YUAN Jin-Hui,XIA Chang-Ming,WANG Wei,WANG Chao,HOU Zhi-Yun,. Flat Supercontinuum Generation within the Telecommunication Wave Bands in a Photonic Crystal Fiber with Central Holes[J]. Chin. Phys. Lett., 2012, 29(5): 975-978
[5] LI Heng,SHENG Chuan-Xiang**,CHEN Qian. Optical Bistability in Ag/Dielectric Multilayers[J]. Chin. Phys. Lett., 2012, 29(5): 975-978
[6] MA Zhi, CAO Chen-Tao, LIU Qing-Fang, WANG Jian-Bo. A New Method to Calculate the Degree of Electromagnetic Impedance Matching in One-Layer Microwave Absorbers[J]. Chin. Phys. Lett., 2012, 29(3): 975-978
[7] WANG Jia-Fu, QU Shao-Bo, XU Zhuo, MA Hua, WANG Cong-Min, XIA Song, WANG Xin-Hua, ZHOU Hang. Grating-Coupled Waveguide Cloaking[J]. Chin. Phys. Lett., 2012, 29(3): 975-978
[8] LI Cheng-Guo, GAO Yong-Hao, XU Xing-Sheng. Angular Tolerance Enhancement in Guided-Mode Resonance Filters with a Photonic Crystal Slab[J]. Chin. Phys. Lett., 2012, 29(3): 975-978
[9] WU Hong, JIANG Li-Yong, JIA Wei, LI Xiang-Yin. Polarization Beam Splitter Based on an Annular Photonic Crystal of Negative Refraction[J]. Chin. Phys. Lett., 2012, 29(3): 975-978
[10] KONG Qi, SHI Qing-Fan, YU Guang-Ze, ZHANG Mei. A New Method for Electromagnetic Time Reversal in a Complex Environment[J]. Chin. Phys. Lett., 2012, 29(2): 975-978
[11] HAN Ying, **, HOU Lan-Tian, YUAN Jin-Hui, XIA Chang-Ming, ZHOU Gui-Yao,. Ultraviolet Continuum Generation in the Fundamental Mode of Photonic Crystal Fibers[J]. Chin. Phys. Lett., 2012, 29(1): 975-978
[12] XU He-Xiu**, WANG Guang-Ming, GONG Jian-Qiang. Compact Dual-Band Zeroth-Order Resonance Antenna[J]. Chin. Phys. Lett., 2012, 29(1): 975-978
[13] ZHU Xue-Feng, ZOU Xin-Ye, ZHOU Xiao-Wei, LIANG Bin, CHENG Jian-Chun**. Concealing a Passive Sensing System with Single-Negative Layers[J]. Chin. Phys. Lett., 2012, 29(1): 975-978
[14] CHEN Xi-Yao**, LIN Gui-Min, LI Jun-Jun, XU Xiao-Fu, JIANG Jun-Zhen, QIANG Ze-Xuan, QIU Yi-Shen, LI Hui. Polarization Beam Splitter Based on a Self-Collimation Michelson Interferometer in a Silicon Photonic Crystal[J]. Chin. Phys. Lett., 2012, 29(1): 975-978
[15] ZHANG Xuan, CHEN Shu-Wen, LIAO Qing-Hua**, YU Tian-Bao, LIU Nian-Hua, HUANG Yong-Zhen . Design of a Novel Polarized Beam Splitter Based on a Two-Dimensional Photonic Crystal Resonator Cavity[J]. Chin. Phys. Lett., 2011, 28(8): 975-978
Viewed
Full text


Abstract