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6 - Broadband Fiber Amplifiers and Sources

Published online by Cambridge University Press:  24 April 2019

Chun Jiang
Affiliation:
Shanghai Jiao Tong University, China
Pei Song
Affiliation:
Shanghai University of Engineering Science
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Publisher: Cambridge University Press
Print publication year: 2019

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References

Krzczanowicz, Lukasz, Iqbal, Md Asif, Phillips, Ian, Tan, Mingming, Skvortcov, Pavel, Harper, Paul, Forysiak, Wladek, Low penalty, dual stage, broadband discrete Raman amplifier for high capacity WDM metro networks, Optical Fiber Communication Conference, Paper# W3D.3. 2018.Google Scholar
Gao, Mingyi, Jiang, Chun, Hu, Weisheng, Wang, Jingyuan, Optimized design of two-pump fiber optical parametric amplifier with two-section nonlinear fibers using genetic algorithm. Opt. Express, 12(23) (2004), 5603–13.Google Scholar
Jiang, Chun, Jin, Li, Optimization of multiple active ion doped fiber amplifiers for three communication windows. Research Letters in Optics, pp.1–5, 2009, Article ID 276538, 5 pages, http://dx.doi.org/10.1155 /2009/276538.CrossRefGoogle Scholar
Jiang, Chun & Jin, Li, Numerical model of an Er3+-Tm3+-Pr3+-codoped fiber amplifier pumped with an 800 nm laser diode. App. Opt., 48(12) (2009), 2220–7.Google Scholar
Jiang, Chun & Jin, Li, Gain characteristics of 980 nm-pumped Er3+-Tm3+-Pr3+-co-doped fiber. App. Phys. B-Lasers and Optics, 95(4) (2009), 703–9.Google Scholar
Jiang, Chun & Jin, Li, Modeling erbium-thulium-co-doped fiber amplifier for 1400–1650 nm band. App. Phys. B-Lasers and Optics, 94(4) (2009), 609–21.Google Scholar
Xu, Wenhui, Lin, Yaming, & Jiang, Chun, Er3+-Tm3+-Codoped Tellurite Fiber Amplifiers for WDM Systems: A Theoretical Analysis of BER and Bandwidth. IEEE J. Quantum Electronics, 45(1–2) (2009), 39.Google Scholar
Jiang, Chun, Modeling and gain properties of Er3+ and Pr3+ codoped fiber amplifier for 1.3 and 1.5 µm windows. J. Optical Soc. Am. B-Optical Phys., 26(5) (2009), 1049–56.CrossRefGoogle Scholar
Jiang, Chun, Lin, Yaming, & Xu, Wenhui, Theoretical analysis of transmission performance of Pr3+-Er3+-co-doped telluride Fiber amplifiers for WDM systems. App. Phys. B-Lasers and Optics, 96(2–3) (2009), 393400.CrossRefGoogle Scholar
Huang, Yi-Chung, Wang, Jau-Sheng, Lu, Yu-Kuan, Liu, Wen-Kuei, Huang, Kuang-Yao, Huang, Sheng-Lung, & Cheng, Wood-Hi, Preform fabrication and fiber drawing of 300 nm broadband chromium-doped fibers. Opt. Express, 15(22) (2007), 14382–8.Google Scholar
Dianov, Evgeny M., Amplification in extended transmission bands using bismuth-doped optical fibers. J. Lightwave Tech., 31(4) (2013), 681–8.CrossRefGoogle Scholar
Cheng, Cheng, A multiquantum-dot-doped fiber amplifier with characteristics of broadband, flat gain, and low noise. J. Lightwave Tech., 26(11) ( 2008), 1404–10.CrossRefGoogle Scholar
Luo, Yanhua, Wen, Jianxiang; Zhang, Jianzhong; Canning, John, & Peng, Gang-Ding, Bismuth and erbium codoped optical fiber with ultrabroadband luminescence across O-, E-, S-, C-, and L-bands. Opt. Letters, 37(16) (2012), 3447–9.CrossRefGoogle Scholar
Zhou, Bo, Lin, Hai, & Yue-Bun Pun, Edwin, Tm3+-doped tellurite glasses for fiber amplifiers in broadband optical communication at 1.20 µm wavelength region. Opt. Express, 18(18) (2010), 18805–10.CrossRefGoogle ScholarPubMed
Zhou, Bo, Tao, Lili, Tsang, Yuen H., Jin, Wei, & Yue-Bun Pun, Edwin, Superbroadband near-IR photoluminescence from Pr3+-doped fluorotellurite glasses. Opt. Express, 20(4) (2012), 3803–13.Google ScholarPubMed
Zhou, Bo, Tao, Lili, Jin, Wei, Tsang, Yuen H., & Pun, Edwin Y. -B., Superbroadband NIR photoluminescence in Nd3+/Tm3+/Er3+ codoped fluorotellurite glasses. IEEE Photonics Tech. Lett., 24(11) (2012), 924–6.Google Scholar
Di Pasquale, F. & Federighi, M., Improved gain characteristics in high concentration Er3+/Yb3+ codoped glass waveguide amplifiers. IEEE J. Quantum Electronics, 30(9) (1994), 2127–31.Google Scholar
Karasek, M., Optimum design of Er3+-Yb3+ codoped fibers for large-signal high-pump-power applications. IEEE J. Quantum Electronics, 33 (1997), 1699–705.Google Scholar
Myslinki, Piotr, Nguyen, Dung, & Chrostowski, Jacek, Effect of concentration on the performance of erbium-doped fiber amplifiers. J. Lightwave Tech., 15(1) (1997), 112120.Google Scholar
Gan, F. X., Optical and spectroscopic properties of glasses. Shanghai Science and Technology Press, November 1992, 245Google Scholar
Shen, Shaoxiong, Jha, Animesh, Liu, Xiaobo, & Nataly, Mira, Tellurite glasses for broadband amplifiers and integrated optics. J. Am. Ceram. Soc.., 85(6) (2002), 1391–5.Google Scholar
Whitley, T. J. & Wyatt, R., Alternative Gaussians spot size polynomial for use with doped fiber amplifier. IEEE Photonics Tech.. Lett., 11 (1993), 1325–7.Google Scholar

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