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T. Hayashi, T. Taru, O. Shimakawa, T. Sasaki, and E. Sasaoka, "Design and fabrication of ultra-low crosstalk and low-loss multi-core fiber," Opt. Express, vol.19, pp. 16576-16592, Aug. 2011.
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J. M. Fini, B. Zhu, T.F. Taunay, M.F. Yan, and K.S. Abedin, "Crosstalk in multicore fibers with randomness: gradual drift vs. short-length variations," Opt. Express, vol. 20, pp. 949-959, Jan. 2012.
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An investigation on crosstalk in multi-core fibers by introducing random fluctuation along longitudinal direction
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K. Takenaga, Y. Arakawa, S. Tanigawa, N. Guan, S. Matsuo, K. Saitoh, and M. Koshiba, "An investigation on crosstalk in multi-core fibers by introducing random fluctuation along longitudinal direction," IEICE Trans. Commun., vol. E94-B, pp. 409-416, Feb. 2011.
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Crosstalk behavior of cores in multi-core fiber under bent condition
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S. Matsuo, K. Takenaga, Y. Arakawa, Y. Sasaki, S. Tanigawa, K. Saitoh, and M. Koshiba, "Crosstalk behavior of cores in multi-core fiber under bent condition," IEICE Electron. Express, vol. 8, pp. 385-390, Mar. 2011.
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Investigation on multi-core fibers with large Aeff and low micro bending loss
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K. Imamura, Y. Tsuchida, K. Mukasa, R. Sugisaki, K. Saitoh, and M. Koshiba, "Investigation on multi-core fibers with large Aeff and low micro bending loss," Opt. Express, vol. 19, pp. 10595-10603, May 2011.
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Crosstalk behavior of multi-core fiber with structural parameter drift in longitudinal direction
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S. Matsuo, K. Takenaga, Y. Arakawa, Y. Sasaki, S. Tanigawa, K. Saitoh, and M. Koshiba, "Crosstalk behavior of multi-core fiber with structural parameter drift in longitudinal direction," IEICE Electron. Express, vol. 8, pp. 1419-1424, Sept. 2011.
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Low-crosstalk multi-core fibers for long-haul transmission
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K. Saitoh, M. Koshiba, K. Takenaga, and S. Matsuo, "Low-crosstalk multi-core fibers for long-haul transmission," Proc. SPIE 8284, 82840I, Jan. 2012.
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Full-vectorial imaginary distance beam propagation method based on finite-element scheme: Application to photonic crystal fibers
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K. Saitoh and M. Koshiba, "Full-vectorial imaginary distance beam propagation method based on finite-element scheme: application to photonic crystal fibers," IEEE J. Quantum Electron., vol. 38, pp. 927-933, July 2002.
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A large effective area multi-core fiber with an optimized cladding thickness
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Dec.
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K. Takenaga, Y. Arakawa, Y. Sasaki, S. Tanigawa, S. Matsuo, K. Saitoh, and M. Koshiba, "A large effective area multi-core fiber with an optimized cladding thickness," Opt. Express, vol. 19, pp. B543-B550, Dec. 2011.
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Large-effectivearea ten-core fiber with cladding diameter of about 200 μm
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Dec.
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S. Matsuo, K. Takenaga, Y. Arakawa, Y. Sasaki, S. Tanigawa, K. Saitoh, and M. Koshiba, "Large-effectivearea ten-core fiber with cladding diameter of about 200 μm," Opt. Lett, vol. 36, pp. 4626-4628, Dec. 2011.
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