Microstructured Fiber Bragg Gratings

被引:65
作者
Cusano, Andrea [1 ]
Paladino, Domenico [1 ]
Iadicicco, Agostino [2 ]
机构
[1] Univ Sannio, Dept Engn, Div Optoelect, I-82100 Benevento, Italy
[2] Univ Naples Parthenope, Dept Technol, I-80143 Naples, Italy
关键词
Fiber Bragg gratings; fiber lasers; fiber sensors; microstructured optical fibers; photosensitivity; PHOTONIC CRYSTAL FIBER; CLADDING-MODE-RESONANCES; POLYMER OPTICAL-FIBER; REFRACTIVE-INDEX; SINGLE-POLARIZATION; WAVE-GUIDES; LASER; AIR; FABRICATION; STRAIN;
D O I
10.1109/JLT.2009.2021535
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
The first fiber Bragg gratings were accidentally written in a Ge-doped silica fiber using a high power argon-ion laser [Hill et al. 1978]. Following this first evidence of photosensitivity in optical fibers, a huge effort was put into fiber gratings: improving their fabrication (they are now all externally inscribed), obtaining complex profiles, optimizing their performance, and incorporating them into devices and systems. On this line, the last decade was characterized by the birth of an emerging class of fiber gratings which can be defined as "microstructured fiber Bragg gratings." They refer to two main categories: one relies on short period gratings writing in microstructured optical fibers, whereas the second deals with standard short period gratings where structural defects at microscale are properly created within the hosting fiber by postprocessing techniques. This paper reviews the fabrication processes at the basis of this new technology as well as its properties and applications. Emphasis will be placed on principles of operation, technological developments and applications discussing perspectives, and challenges that lie ahead.
引用
收藏
页码:1663 / 1697
页数:35
相关论文
共 160 条
[1]   Towards multimaterial multifunctional fibres that see, hear, sense and communicate [J].
Abouraddy, A. F. ;
Bayindir, M. ;
Benoit, G. ;
Hart, S. D. ;
Kuriki, K. ;
Orf, N. ;
Shapira, O. ;
Sorin, F. ;
Temelkuran, B. ;
Fink, Y. .
NATURE MATERIALS, 2007, 6 (05) :336-347
[2]   Grating formation in pure silica-core fibers [J].
Albert, J ;
Fokine, M ;
Margulis, W .
OPTICS LETTERS, 2002, 27 (10) :809-811
[3]   COMPARISON OF ONE-PHOTON AND 2-PHOTON EFFECTS IN THE PHOTOSENSITIVITY OF GERMANIUM-DOPED SILICA OPTICAL FIBERS EXPOSED TO INTENSE ARF EXCIMER-LASER PULSES [J].
ALBERT, J ;
MALO, B ;
HILL, KO ;
BILODEAU, F ;
JOHNSON, DC ;
THERIAULT, S .
APPLIED PHYSICS LETTERS, 1995, 67 (24) :3529-3531
[4]   PHOTOINDUCED DIFFRACTION IN POLYMER WAVE-GUIDES [J].
ANDREWS, JH ;
SINGER, KD .
APPLIED OPTICS, 1993, 32 (33) :6703-6709
[5]   Antisymmetric grating coupler:: experimental results [J].
Åslund, M ;
Canning, J ;
Poladian, L ;
de Sterke, CM ;
Judge, A .
APPLIED OPTICS, 2003, 42 (33) :6578-6583
[6]  
ASLUND M, 2005, P AUSTR C OPT LAS SP
[7]   Fiber optical Bragg grating refractometer [J].
Asseh, A ;
Sandgren, S ;
Ahlfeldt, H ;
Sahlgren, B ;
Stubbe, R ;
Edwall, G .
FIBER AND INTEGRATED OPTICS, 1998, 17 (01) :51-62
[8]   Design and realization of multiple quarter-wave phase-shifts UV-written bandpass filters in optical fibers [J].
Bakhti, F ;
Sansonetti, P .
JOURNAL OF LIGHTWAVE TECHNOLOGY, 1997, 15 (08) :1433-1437
[9]   Compact, stable and efficient all-fibre gas cells using hollow-core photonic crystal fibres [J].
Benabid, F ;
Couny, F ;
Knight, JC ;
Birks, TA ;
Russell, PS .
NATURE, 2005, 434 (7032) :488-491
[10]   Efficient Bragg gratings in phosphosilicate and germanosilicate photonic crystal fiber [J].
Beugin, V. ;
Bigot, L. ;
May, P. ;
Lancry, M. ;
Quiquempois, Y. ;
Douay, M. ;
Melin, G. ;
Fleureau, A. ;
Lempereur, S. ;
Gasca, L. .
APPLIED OPTICS, 2006, 45 (32) :8186-8193