Design of Seven-core Photonic Crystal Fiber with Flat In-phase Mode for Yb: Fiber Laser Pumping

Similar documents
SUPER-LATTICE STRUCTURE PHOTONIC CRYSTAL FIBER

International Conference on Information Sciences, Machinery, Materials and Energy (ICISMME 2015)

Generation of supercontinuum light in photonic crystal bers

Highly Nonlinear Fibers and Their Applications

Fiber-Optics Group Highlights of Micronova Department of Electrical and Communications Engineering Helsinki University of Technology

Tailoring Nonlinearity and Dispersion of Photonic Crystal Fibers Using Hybrid Cladding

Sources supercontinuum visibles à base de fibres optiques microstructurées

Analysis and Modeling of Microstructured Fiber Using The Analytical Method Based on The Empirical Equation

Nonlinear effects and pulse propagation in PCFs

Fiber Gratings p. 1 Basic Concepts p. 1 Bragg Diffraction p. 2 Photosensitivity p. 3 Fabrication Techniques p. 4 Single-Beam Internal Technique p.

Research Article Nonlinear Phenomena of Ultra-Wide-Band Radiation in a Photonic Crystal Fibre

Dispersion Properties of Photonic Crystal Fiber with Four cusped Hypocycloidal Air Holes in Cladding

Blue-enhanced Supercontinuum Generation in a Fluorine-doped Graded-index Multimode Fiber

Design of a Multi-Mode Interference Crossing Structure for Three Periodic Dielectric Waveguides

Highly Coherent Supercontinuum Generation in the Normal Dispersion Liquid-Core Photonic Crystal Fiber

Design of a Polarization Maintaining Large Negative Dispersion PCF Using Rectangular Lattice

Optical time-domain differentiation based on intensive differential group delay

Finite Element Method

Chalcogenide glass Photonic Crystal Fiber with flattened dispersion and high nonlinearity at telecommunication wavelength

Highly Birefringent Elliptical-Hole Microstructure Fibers With Low Confinement Loss

Coherent Raman imaging with fibers: From sources to endoscopes

APPLICATION NOTE. Supercontinuum Generation in SCG-800 Photonic Crystal Fiber. Technology and Applications Center Newport Corporation

Polarization Properties of Photonic Crystal Fibers Considering Thermal and External Stress Effects

No. 9 Experimental study on the chirped structure of the construct the early time spectra. [14;15] The prevailing account of the chirped struct

Dmitriy Churin. Designing high power single frequency fiber lasers

Maximizing the Bandwidth from Supercontinuum Generation in Photonic Crystal Chalcogenide Fibers

Title. Author(s)Nagasaki, Akira; Saitoh, Kunimasa; Koshiba, Masanori. CitationOptics Express, 19(4): Issue Date Doc URL.

Demonstration of ultra-flattened dispersion in photonic crystal fibers

A tunable corner-pumped Nd:YAG/YAG composite slab CW laser

Sunlight loss for femtosecond microstructured silicon with two impurity bands

Department of Physics and Meteorology, Indian Institute of Technology, Kharagpur , India

Square Lattice Elliptical-Core Photonic Crystal Fiber Soliton-Effect Compressor at 1550nm

Supercontinuum Generation for Ultrahigh-Resolution OCT via Selective Liquid Infiltration Approach

Design Optimization of Equiangular Spiral Photonic Crystal Fiber for Large Negative Flat Dispersion and High Birefringence

Department of Physics & Meteorology, Indian Institute of Technology, Kharagpur , India

Research Article Designing an Ultra-Negative Dispersion Photonic Crystal Fiber with Square-Lattice Geometry

Analysis of second-harmonic generation microscopy under refractive index mismatch

Supercontinuum Source for Dense Wavelength Division Multiplexing in Square Photonic Crystal Fiber via Fluidic Infiltration Approach

Near Zero Ultra flat Dispersion PCF: Properties and Generation of Broadband Supercontinuum

Photonic crystal fiber with a hybrid honeycomb cladding

Effective area of photonic crystal fibers

COMPRESSION of soliton pulses propagating in conventional

Progress In Electromagnetics Research B, Vol. 22, 39 52, 2010

Ultraflat broadband supercontinuum in highly nonlinear Ge 11.5 As 24 Se 64.5 photonic crystal fibres

Optics Communications

Self-Phase Modulation in Optical Fiber Communications: Good or Bad?

Effect of cross-phase modulation on supercontinuum generated in microstructured fibers with sub-30 fs pulses

Photonic Crystal Fiber based Network Components: The Future Trend in Optical Network Design

Empirical formulae for hollow-core antiresonant fibers: dispersion and effective mode area

Dark Soliton Fiber Laser

Observation of spectral enhancement in a soliton fiber laser with fiber Bragg grating

Numerical Modeling of the Fundamental Characteristics of ZBLAN Photonic Crystal Fiber for Communication in 2 3 m Midinfrared Region

How long wavelengths can one extract from silica-core fibers?

Geometrical parameters dependence towards ultra-flat dispersion square-lattice PCF with selective liquid infiltration

Applications of Nonlinear Fiber Optics. Second Edition

SCIFED. Publishers. Keywords Temperature; Refractive Index; Michelson Interferometer; Up-Taper; Optical Fiber Sensor; All-Fiber Sensor

Department of Electronic Engineering, Ching Yun University, Jung-Li 320, Taiwan 2

Experimental studies of the coherence of microstructure-fiber supercontinuum

Application of high-precision temperature-controlled FBG f ilter and light source self-calibration technique in the BOTDR sensor system

High-power terahertz radiation from surface-emitted THz-wave parametric oscillator

Multi-cycle THz pulse generation in poled lithium niobate crystals

Controlling Graphene Ultrafast Hot Carrier Response from Metal-like. to Semiconductor-like by Electrostatic Gating

Design and Modal Analysis of Photonic Crystal Fiber for Dispersion Compensation over Broadband Range

Frequency-selective self-trapping and supercontinuum generation in arrays of coupled nonlinear waveguides

Wavelength switchable flat-top all-fiber comb filter based on a double-loop Mach-Zehnder interferometer

A short tutorial on optical rogue waves

This document is downloaded from DR-NTU, Nanyang Technological University Library, Singapore.

Asia Pacific Journal of Engineering Science and Technology 3 (4) (2017)

Alexander Gaeta Department of Applied Physics and Applied Mathematics Michal Lipson Department of Electrical Engineering

Multiple-color cw visible lasers by frequency sum-mixing in a cascading Raman fiber laser

Spectra Power and Bandwidth of Fiber Bragg Grating Under Influence of Gradient Strain

Ultra-high Birefringent Photonic Crystal Fiber for Sensing Applications

Superconductivity at 41.0 K in the F-doped LaFeAsO 1-x F x

Generation of dark solitons in erbium-doped fiber lasers based Sb 2 Te 3 saturable absorbers

From optical graphene to topological insulator

Propagation losses in optical fibers

Principle of photonic crystal fibers

Jindan Shi, Xian Feng, Peter Horak, Kangkang Chen, Peh Siong Teh, Shaif-ul Alam, Wei H. Loh, David J. Richardson, Morten Ibsen

Linear pulse propagation

Graphene-Bi 2 Te 3 Heterostructure as Saturable Absorber for Short Pulse Generation

CHARACTERISTICS ANALYSIS OF DUAL CORE PHOTONIC CRYSTAL FIBER (PCF)

Negative curvature fibers

Double-distance propagation of Gaussian beams passing through a tilted cat-eye optical lens in a turbulent atmosphere

IN RECENT YEARS, Cr -doped crystals have attracted a

Structural Tolerances of Optical Characteristics in Various types of Photonic Lattices

Characterisation of polarised supercontinuum generation and its focal field

by applying two pairs of confocal cylindrical lenses

QUESTION BANK IN PHYSICS

Simulations of nanophotonic waveguides and devices using COMSOL Multiphysics

Highly Nonlinear Bending-Insensitive Birefringent Photonic Crystal Fibres

Defect-based Photonic Crystal Cavity for Silicon Laser

Femtosecond laser rapid fabrication of large-area rose-like micropatterns on freestanding flexible graphene films

Limits of coherent supercontinuum generation in normal dispersion fibers

Transformation and control of ultrashort pulses in dispersion-engineered photonic crystal fibres

DUAL CORE PHOTONIC CRYSTAL FIBER WITH HIGH NEGATIVE DISPERSION AND LOW COUPLING LENGTH

Research Article Dynamics of Dispersive Wave Generation in Gas-Filled Photonic Crystal Fiber with the Normal Dispersion

Numerical investigation of the impact of reflectors on spectral performance of Raman fibre laser

Optical Cherenkov radiation in an As 2 S 3 slot waveguide with four zero-dispersion wavelengths

Nonlinear Photonics with Optical Waveguides

Transcription:

Optics and Photonics Journal, 2013, 3, 197-201 doi:10.4236/opj.2013.32b047 Published Online June 2013 (http://www.scirp.org/journal/opj) Design of Seven-core Photonic Crystal Fiber with Flat In-phase Mode for Yb: Fiber Laser Pumping Ruijuan Dong 1, Peiguang Yan 1*, Gelin Zhang 1, Huiquan Li 1, Shuangchen Ruan 1, Huifeng Wei 2, Jie Luo 2 1 Shenzhen key laboratory of laser engineering, Shenzhen University, College of Electronic Science and Technology,ShenZhen, China 2 State Key Laboratory of Optical Fiber and Cable Manufacture Technology, Yangtze Optical Fiber and Cable Company Ltd. R&D center, Wuhan, China Email: * yanpg@szu.edu.cn Received 2013 ABSTRACT We numerically investigate the seven-core photonic crystal fiber (PCF) with the zero dispersion wavelength designed in the range of 1000-1080 nm, particularly suitable for the ytterbium-doped fiber laser pumping. Also, the PCFs are well designed for obtaining a flat in-phase mode by carefully adjusting the diameter of inner layer six holes, and the corresponding empirical values of fiber structure are summarized and listed. The variations of inner six holes to the amplitude of in-phase mode are further investigated, and our results show that a better tolerance can be achieved in the fiber structures with lower filling ratio configuration. Keywords: Photonic Crystal Fiber (PCF); In-phase Mode (IPM); Supercontinuum Generation (SCG) 1. Introduction The supercontinuum generation (SCG) in photonic crystal fiber (PCF) is an intensively research topic in optical and photonic science in the last decade [1-4]. Along with the research of SCG, the corresponding SC sources have already found their applications in optical coherence tomography (OCT), pump-probe spectroscopy, metrology or non-linear microscopy. Recently, high power SC source becomes a new research trend and exhibits strong attraction because of the high spectral power density. The ytterbium fiber (Yb:fiber) laser system has the merits of high efficiency, reliability and compatibility with PCF, rendering them almost ideal candidates for compact sources of SC radiation [5-8]. H. Chen [7] reported a 35 W high power all fiber SC source based on PCF with picosecond laser, and X. Hu [8] reported a 50W strictly single mode all-fiber SC source spanning from 500 nm to over 1700 nm by using a 5-m-long commercially PCF. However, it is particularly challenging to further improve the SC power that limited by the low coupling efficiency from the large mode area Yb:fiber into the highly nonlinear PCF. The mismatch between their core diameters causes a high splicing loss, and the leaked power is enough to destroy the splicing point at high pump power. Simply increasing the core size of PCF would cause the * Corresponding author. zero dispersion wavelength (ZDW) shift to longer wavelength, hence unfavorable for spectral broadening according to the soliton mechanism. A feasible method is the PCF mode-field expanders [9], but the fabrication process is complicated and the large convert ratio of mode field is more challenging in itself. Several recent researches focused on the high pulse energy phase-locking multicore Yb-doped PCF laser [10-12], and SC generation has reported with 5.4 W output power in a sevenore PCF with femtosecond Yb:fiber laser system [13], but the fundamental supermode is not optimal in that fiber design. Among all supermodes, only the in-phase mode (IPM) where all cores have the same phase has the best Gaussian-like far field intensity distribution resulting in good beam quality [14-17]. A. Mafi [14-15] has presented a recipe for constructing custom-shaped modes based on perturbation theory of coupled modes, but the recipe is not intuitive. In this paper, our aim is to design the sevenore PCFs with well flat IPM while keeping the ZDW in 1000-1080 nm for Yb:fiber laser pumping. The corresponding empirical values of fiber structure are summarized and listed. The variations of inner six holes to the amplitude of IPM are further investigated, and our results show that a better tolerance can be achieved in the fiber structures with lower filling ratio configuration.

198 R. J. DONG ET AL. 2. The Fiber Structure Figure 1 is the cross section of seven-core PCF with the enlarged microstructure region. The air holes are arranged in a hexagonal pattern. Around the central core, the adjacent six air holes are missed to form a seven-core PCF, and each core is marked out with number. The lattice constant is set to Λ, the inner six air holes around central core have a diameter of d1 and air filling ratio of F 1, while the other air holes have a diameter of d 2 and filling ratio of F 2. We utilize the full-vectorial finite element method to simulate the mode field distribution and fiber parameters of the seven-core PCF e.g. dispersion parameter D, nonlinear coefficient γ and effective mode area A eff. Material dispersion of silica is included in our simulation [18]. 3. Results and Discussion In our calculation, the filling ratio F 2 is set in the range of 0.45-0.55. These F 2 values are slightly higher than the single mode condition [19], but can also achieve a high beam quality as has been proved in single core PCFs [20]. Also, a slightly higher F 2 has the merits of mode confinement. We check the lattice constant Λ from 2.8μm to 3.4μm, and adjust the filling ratio F1 to get the flat IPM. The corresponding values are organized in Table 1. It can be seen the F 1 are 0.497, 0.577 for F 2 = 0.45, 0.55 at Λ = 2.8 μm, while the corresponding value of F 1 are 0.4928, 0.5728 at Λ = 3.4 μm. We notice that the F 1 increases by ~0.008 when the F 2 increases by 0.01 for a fixed Λ value in concerned range. Furthermore, the F 1 decreases by ~0.0007 when the Λ increases by 0.1μm for a fixed F2. We then test the other Λ and F 2 in the concerned range, and find that good flat IPM can be achieved based on the above mentioned empirical relation. Figure 2 shows the 3-D flattened IPM distribution for Λ = 2.8 μm, 3.4 μm and F 2 = 0.45, 0.55, respectively. It is evidently that all the lobes of the IPMs are of equal amplitude. Figure 1. The fiber structure. Table 1. The calculated F 1 for flattened IPMs in the concerned range of Λ and F 2. F 2 F 1 Λ 2.8 2.9 3.0 3.1 3.2 3.3 3.4 F 2 =0.45 0.497 0.4963 0.4956 0.4949 0.4942 0.4935 0.4928 F 2 =0.46 0.505 0.5043 0.5036 0.5029 0.5022 0.5015 0.5008 F 2 =0.47 0.513 0.5123 0.5116 0.5109 0.5102 0.5095 0.5088 F 2 =0.48 0.521 0.5203 0.5196 0.5189 0.5182 0.5175 0.5168 F 2 =0.49 0.529 0.5283 0.5276 0.5269 0.5262 0.5255 0.5248 F 2 =0.50 0.537 0.5363 0.5356 0.5349 0.5342 0.5335 0.5328 F 2 =0.51 0.545 0.5443 0.5436 0.5429 0.5422 0.5415 0.5408 F 2 =0.52 0.553 0.5523 0.5516 0.5509 0.5502 0.5495 0.5488 F 2 =0.53 0.561 0.5603 0.5596 0.5589 0.5582 0.5575 0.5568 F 2 =0.54 0.569 0.5683 0.5676 0.5669 0.5662 0.5655 0.5648 F 2 =0.55 0.577 0.5763 0.5756 0.5749 0.5742 0.5735 0.5728 (a) (b) (c) (d) Figure 2. The flattened 3-D IPMs, here, (a) is for Λ = 2.8 μm and F 2 = 0.45, (b) is for Λ = 2.8 μm and F 2 = 0.55; (c) is for Λ=3.4 μm and F 2 = 0.45, while (d) is for Λ = 3.4 μm and F 2 = 0.55.

R. J. DONG ET AL. 199 Considering that the ZDW range of fiber structures in Table 1 can be determined by the fiber structures at the low left corner and the top right corner, we calculate the dispersion profiles of the two fiber structures as shown in Figure 3 (a). The inset clearly shows the ZDW position is in our desired range of 1000 nm-1080 nm, meeting our design purpose. Figure 3 (b) shows the calculated nonlinear coefficient γ and effective mode area A eff at wavelength of 1060 nm at the different F 2. Here we only display the values for Λ = 2.8 μm and 3.4 μm, it is enough for determining the γ and A eff range for the other Λ in Table 1. It can be expected that the A eff is sevenfold larger than the single core PCF with the same Λ and F 2. Hence the pump coupling efficiency can be enhanced but with a sacrifice of γ. As for the fiber structure of Λ = 3.4 μm, F 1 = 0.5728 and F 2 = 0.55, the γ value is 1.67W -1 km -1, about one seventh of the single core PCF with similar structure in reference [20]. Since the flattened IPM is controlled by engineering the air-hole size between the cores, a tolerance analysis is necessary to study how robust the fiber design is to perturbations. Through a change of the first layer filling ratio F 1, a tolerance comparison is given in Figure 4. The curves are obtained by extracting out the x component of electric field Ex across the cores marked with 5, 1, 2. Figure 4 (a) is for the fiber structure of Λ = 2.8 μm and F 2 = 0.55, while Figure 4 (b) is for the same Λ but with a lower filling ratio F 2 = 0.45. We can see that the Ex curve changes significantly for the case of F 2 = 0.55 at the variations of ± 5%. However, the MCPCF with a lower filling ratio of F 2 = 0.45 and Λ = 2.8 μm exhibits high resistance to the perturbations, hence benefiting for the flat IPM control in actual fabrication process. It is necessary to analyze the IPM distribution at the different wavelengths, since the SC usually covers a broad spectral range. Figure 5 shows the calculated 3-D field distribution for the case of Λ = 2.8 μm, F 1 = 0.497 and F 2 = 0.45. Although the wavelength spans from 600 nm to 1800 nm, the Ex amplitude difference between the central lobe and surround lobes is still in an acceptable level. Consequently, the IPMs of MCPCF are more favorable for the high power coherent SC source. It is also noticed that the central lobe is slightly lower at the short wavelength but higher at the long wavelength as we compare the field distribution at 600 nm with that at 1800 nm, hence the visible parts in the generated spectrum would be gathered in outside six lobes when this MCPCF is applied in SCG. Figure 3. The properties for the flattened IPMs with structure of Λ = 2.8 μm, F 2 = 0.55 and Λ = 3.4 μm, F 2 = 0.45. Here, (a) is dispersion profiles, and (b) is for γ and Aeff calculated at 1060nm. Figure 4. The Ex tolerance of IPMs with the variations of ± 5% for the inner six air holes, here (a) is for Λ = 2.8 μm and F 2 = 0.45, while (b) is for Λ = 2.8 μm and F 2 = 0.55.

200 R. J. DONG ET AL. (a) (c) Figure 5. The 3-D IPMs at wavelength 600 nm, 1060 nm, 1400, 1800 nm from (a) to (b), respectively. The fiber has a structure of Λ = 2.8 μm, F 1 = 0.497 and F 2 = 0.45. 4. Conclusions In conclusion, we firstly numerically investigate the seven-core PCF with the ZDW designed in the range of 1000-1080 nm for the purpose of high power SC source pumped by the Yb: fiber laser. Also, the PCFs are well designed for obtaining a flat in-phase mode by carefully adjusting the diameter of inner layer six holes, and the corresponding empirical values of fiber structure are summarized and listed. The variations of inner six holes to the amplitude of in-phase mode are further investigated, and our results show that a better tolerance can be achieved in the fiber structures with lower filling ratio configuration. These results are helpful for design of seven-core PCF for high power SCG. 5. Acknowledgements Supported by NSFC (Nos.61007054, 61275144), Doctoral Program of Higher Education Research Fund (No.2010 408110002), the Improvement and Development Project of Shenzhen Key Lab (Nos.CXB201005240014A, ZDSY 0120612094924467), the Science and technology project of Shenzhen City (No. JC201105170693A), the Science and technology project of Shenzhen University (No.2012 1) and the Science and technology project of Shenzhen City (Nos.ZYC20100690103A, 2011PTZZ0125). REFERENCES [1] J. M. Dudley, G. Genty and S. Coen, Supercontinuum Generation in Photonic Crystal Fiber, Reviews of (b) (d) Modern Physics, Vol. 78, No. 4, 2006, pp. 1135-1184. doi:10.1103/revmodphys.78.1135 [2] J. M. Dudley and J. Roy Taylor, Ten Years of Nonlinear Optics in Photonic Crystal Fibre, Nature Photonics 3, 2009, pp. 85-90. doi:10.1038/nphoton.2008.285 [3] L. Zheng, X. Zhang, X. M. Ren, H. F. Ma, L. Shi, Y. M. Wang and Y. Q. Huang, Dispersion Flattened Photonic Crystal Fiber with High Nonlinearity for Supercontinuum Generation at 1.55 \mum, Chinese Optics Letters, Vol. 9, No.4, 2011, p. 040601. doi:10.3788/col201109.040601 [4] L. Fang, J. L. Zhao and X. T. Gan, Chin. Ultra Broad- Band-Flattened Dispersion Photonic Crystal Fiber for Supercontinuum Generation, Optics Letters, Vol. 8, No. 11, 2010, pp.1028-1031. doi: 10.3788/COL20100811.1028 [5] S. P. Chen, H. W. Chen, J. Hou and Z. J. Liu, 100 W All Fiber Picosecond MOPA Laser, Optics Express, Vol. 17, No. 26, 2009, pp. 24008-24012. doi.org/10.1364/oe.17.024008 [6] K. K. Chen, J. H. V. Price, S. Alam, J. R. Hayes, D. J. Lin, A. Malinowski and D. J. Richardson, Polarisation Maintaining 100W Yb-Fiber MOPA Producing µj Pulses Tunable in Duration from 1 to 21 ps, Optics Express, Vol. 18, No.14, 2010, pp.14385-14394. doi.org/10.1364/oe.18.014385 [7] H. W. Chen, S. P. Chen, J. H. Wang, Z. L. Chen and J. Hou, 35 W High Power All Fiber Supercontinuum Generation in PCF with Picosecond MOPALaser, Optics Communications,Vol.284,No.23,2011, pp. 5484-5487. doi:10.1016/j.optcom.2011.08.024 [8] X. H. Hu, W. Zhang, Z. Yang, Y. S Wang, W. Zhao, X. H. Li, H. S. Wang, C. Li and D.Y. Shen, High Average Power, Strictly All-Fiber Supercontinuum Source with Good Beam Quality, Optics Letters, Vol. 36, No. 14, 2011, pp. 2659-2661. doi.org/10.1364/ol.36.002659 [9] X. M. Xi, Z. L. Chen, G. L. Sun, and J. Hou, Mode-Field Expansion in Photonic Crystal Fibers, Applied Optics, Vol. 50, No. 25, 2011, pp. E50-E54. doi.org/10.1364/ao.50.000e50 [10] L. Michaille, D. M. Taylor, C. R. Bennett, T. J. Shepherd and B. G. Ward, Characteristics of A Q-Switched Multicore Photonic Crystal Fiber Laser with A Very Large Mode Field Area, Optics Letters, Vol. 33, No. 1, 2008, pp.71-73. doi.org/10.1364/ol.33.000071 [11] X. H. Fang, M. L. Hu, C. Xie, Y. J. Song, L. Chai and C. Y. Wang, High Pulse Energy Mode-Locked Multicore Photonic Crystal Fiber Laser, Optics Letters, Vol. 36, No. 6, 2011, pp.1005-1007. doi.org/10.1364/ol.36.001005 [12] M. L. Hu, X. H. Fang and B. W. Liu, Multicore Photonic- Crystal-Fiber Platform for High-Power All-Fiber Ultrashort-Pulse Sources, Journal of Modern Optics, Vol.58, No. 21, 2011, pp.1966-1970. doi.10.1080/09500340.2011.597521 [13] X. H. Fang, M. L. Hu, L. L. Huang, L. Chai, N. L. Dai, J. Y. Li, A. Y. Tashchilina, A. M. Zheltikov and C. Y. Wang, Multiwatt Octave-Spanning Supercontinuum Generation in Multicore Photonic-Crystal Fiber, Optics

R. J. DONG ET AL. 201 Letters, Vol. 37, No.12, 2012, pp. 2292-2294. doi.org/10.1364/ol.37.002292 [14] A. Mafi and J. V. Moloney, Phase Locking in A Passive Multicore Photonic Crystal Fiber, Journal of the Optical Society of America B, Vol. 21, No. 5, 2004, pp. 897-902. [15] A. Mafi and J. V. Moloney, Shaping Modes in Multicore Photonic Crystal Fibers, Photonics Technology Letters, IEEE, 2005, pp. 348-350. [16] L. Li, A. Schülzgen, S. Chen, V. L. Temyanko, J. V. Moloney and N. Peyghambarian, Phase Locking and In-Phase Supermode Selection in Monolithic Multicore Fiber Lasers, Optics Letters, Vol.31, No. 17, 2006, pp. 2577-2579. doi.org/10.1364/ol.31.002577 [17] K. M. Gundu, M. Kolesik and J. V. Moloney, Mode Shaping in Multicore Fibers, Optics Letters, Vol. 32, No. 7, 2007, pp. 763-765.doi.org/10.1364/OL.32.000763 [18] G. P. Agrawal, Nonlinear Fiber Optics, 4th Edition, Academic Press, 2009. [19] T. A. Birks, J. C. Knight and P. S. J. Russell, Endlessly Single-Mode Photonic Crystal Fiber, Optics Letters, Vol. 22, No.13, 1997, pp. 961-963. doi.org/10.1364/ol.22.000961 [20] C. Y. Guo, S. C. Ruan, P.G. Yan, E. Pan and H. F. Wei, Flat Supercontinuum Generation in Cascaded Fibers Pumped by A Continuous Wave Laser, Optics Express, Vol. 18, No. 11, 2010, pp. 11046-11051. doi.org/10.1364/oe.18.011046