Dispersion tailoring and compensation by modal interactions in OmniGuide fibers

被引:99
作者
Engeness, TD [1 ]
Ibanescu, M [1 ]
Johnson, SG [1 ]
Weisberg, O [1 ]
Skorobogatiy, M [1 ]
Jacobs, S [1 ]
Fink, Y [1 ]
机构
[1] OmniGuide Commun, Cambridge, MA 02139 USA
关键词
D O I
10.1364/OE.11.001175
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
We present a method for dispersion-tailoring of OmniGuide and other photonic band-gap guided fibers based on weak interactions ("anticrossings") between the core-guided mode and a mode localized in an intentionally introduced defect of the crystal. Because the core mode can be guided in air and the defect mode in a much higher-index material, we are able to obtain dispersion parameters in excess of 500,000 ps/nm-km. Furthermore, because the dispersion is controlled entirely by geometric parameters and not by material dispersion, it is easily tunable by structural choices and fiber-drawing speed. So, for example, we demonstrate how the large dispersion can be made to coincide with a dispersion slope that matches commercial silica fibers to better than 1%, promising efficient compensation. Other parameters are shown to yield dispersion-free transmission in a hollow OmniGuide fiber that also maintains low losses and negligible nonlinearities, with a nondegenerate TE01 mode immune to polarization-mode dispersion (PMD). We present theoretical calculations for a chalcogenide-based material system that has recently been experimentally drawn. (C) 2003 Optical Society of America.
引用
收藏
页码:1175 / 1196
页数:22
相关论文
共 39 条
[1]  
Ashcroft N. W., 1973, SOLID STATE PHYS
[2]   -1800ps/(nm.km) chromatic dispersion at 1.55μm in dual concentric core fibre [J].
Auguste, JL ;
Jindal, R ;
Blondy, JM ;
Clapeau, M ;
Marcou, J ;
Dussardier, B ;
Monnom, G ;
Ostrowsky, DB ;
Pal, BP ;
Thyagarajan, K .
ELECTRONICS LETTERS, 2000, 36 (20) :1689-1691
[3]   Dispersion compensation using single-material fibers [J].
Birks, TA ;
Mogilevtsev, D ;
Knight, JC ;
Russell, PS .
IEEE PHOTONICS TECHNOLOGY LETTERS, 1999, 11 (06) :674-676
[4]   Adiabatic coupling in tapered air-silica microstructured optical fiber [J].
Chandalia, JK ;
Eggleton, BJ ;
Windeler, RS ;
Kosinski, SG ;
Liu, X ;
Xu, C .
IEEE PHOTONICS TECHNOLOGY LETTERS, 2001, 13 (01) :52-54
[5]   TAILORING ZERO CHROMATIC DISPERSION INTO THE 1.5-1.6 MU-M LOW-LOSS SPECTRAL REGION OF SINGLE-MODE FIBERS [J].
COHEN, LG ;
LIN, C ;
FRENCH, WG .
ELECTRONICS LETTERS, 1979, 15 (12) :334-335
[6]   Designing the properties of dispersion-flattened photonic crystal fibers [J].
Ferrando, A ;
Silvestre, E ;
Andrés, P ;
Miret, JJ ;
Andrés, MV .
OPTICS EXPRESS, 2001, 9 (13) :687-697
[7]   A dielectric omnidirectional reflector [J].
Fink, Y ;
Winn, JN ;
Fan, SH ;
Chen, CP ;
Michel, J ;
Joannopoulos, JD ;
Thomas, EL .
SCIENCE, 1998, 282 (5394) :1679-1682
[8]   Guiding optical light in air using an all-dielectric structure [J].
Fink, Y ;
Ripin, DJ ;
Fan, SH ;
Chen, CP ;
Joannopoulos, JD ;
Thomas, EL .
JOURNAL OF LIGHTWAVE TECHNOLOGY, 1999, 17 (11) :2039-2041
[9]   WEAKLY GUIDING FIBERS [J].
GLOGE, D .
APPLIED OPTICS, 1971, 10 (10) :2252-&
[10]   A review of IR transmitting, hollow waveguides [J].
Harrington, JA .
FIBER AND INTEGRATED OPTICS, 2000, 19 (03) :211-227