A large effective area multi-core fibre with an optimised cladding thickness
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M. Koshiba | K. Saitoh | K. Takenaga | S. Matsuo | Y. Sasaki | K. Takenaga | S. Tanigawa | Y. Arakawa | M. Koshiba
[1] Kunimasa Saitoh,et al. Full-vectorial imaginary-distance beam propagation method based on a finite element scheme: application to photonic crystal fibers , 2002 .
[2] Pierre Sillard,et al. Micro-bend losses of trench-assisted single-mode fibers , 2010, 36th European Conference and Exhibition on Optical Communication.
[3] Kazunori Mukasa,et al. Design optimization of large Aeff multi-core fibers , 2010, OECC 2010 Technical Digest.
[4] Kazunori Mukasa,et al. Effective space division multiplexing by Multi-Core Fibers , 2010, 36th European Conference and Exhibition on Optical Communication.
[5] M. Koshiba,et al. Reduction of crosstalk by quasi-homogeneous solid multi-core fiber , 2010, 2010 Conference on Optical Fiber Communication (OFC/NFOEC), collocated National Fiber Optic Engineers Conference.
[6] K. Takenaga,et al. Reduction of crosstalk by trench-assisted multi-core fiber , 2011, 2011 Optical Fiber Communication Conference and Exposition and the National Fiber Optic Engineers Conference.
[7] Kunimasa Saitoh,et al. Multi-core fiber design and analysis , 2011, 2011 37th European Conference and Exhibition on Optical Communication.
[8] Takashi Sasaki,et al. Low-crosstalk and low-loss multi-core fiber utilizing fiber bend , 2011, 2011 Optical Fiber Communication Conference and Exposition and the National Fiber Optic Engineers Conference.
[9] Sugizaki Ryuichi,et al. Trench Assisted Multi-Core Fiber with Large Aeff over 100 μm2 and Low Attenuation Loss , 2012 .