Frontiers of Optoelectronics, 2009, 2 (2): 210, 网络出版: 2012-10-08  

High-power EDFA applied in distributed optical fiber Raman temperature sensor system

High-power EDFA applied in distributed optical fiber Raman temperature sensor system
作者单位
College of Optoelectronic Science and Engineering, Huazhong University of Science and Technology, Wuhan 430074, China
摘要
Abstract
In this paper, a high-power erbium-doped fiber amplifier (EDFA) for the temperature sensor system is theoretically designed and experimentally demonstrated. It consists of an erbium-doped fiber that is pumped bidirectionally with two 980-nm high-power laser diodes (LDs). At the EDFA input, an optical isolator (ISO) is used to ensure that the signal pulse transmits forward only. After that, a wavelength division multiplexer (WDM) is employed to combine the forward pump laser (980 nm) and incident optical pulse (1550 nm) into the erbiumdoped fiber for direct amplification in the optical domain. At the EDFA output, another WDM couples the backward pump laser (980 nm) into the erbium-doped fiber and outputs the amplified optical pulse (1550 nm) with an ISO followed to isolate the backscattering light. According to this structure, we carried out the experiment in the condition as follows. For 980 nm pump LD, the operating current is 590 mA, and the setting temperature is 25°C. For EDFA, the length of erbium-doped fiber is 12.5 m, and the power of 1550 nm input signal is 1.5mW. As a result, the power of pump LD is 330mW, and the power uncertainty is 0.5%. The power of EDFA output at 1550 nm is 300mW, and the power uncertainty is ±3mW.
参考文献

[1] Becker P C, Olsson N A, Simpson J R. Erbium-Doped Fiber Amplifiers: Fundamentals and Technology. San Diego: Academic Press, 1999

[2] Kasukawa A. Recent progress of high power laser diodes for EDFA pumping. In: Proceedings of OFC. 1999, 20-22

[3] Chang C L. A dual pumped double-pass L-band EDFAwith high gain and low noise. Optics Communications, 2006, 267(1): 108-112

[4] Harun S W, Poopalan P, Ahmad H. Gain enhancement in L-band EDFA through a double-pass technique. IEEE Photonics Technology Letters, 2002, 14(3): 296-297

[5] Li J, Brattain M, Rice A K, Labudovic M, Young J R, Cook M, Ye F, Davis M K. Uncooled mini-DIL module for 980-nm pump lasers. IEEE Transactions on Advanced Packaging, 2006, 29(1): 171-177

[6] Mahdi M A, Ahmad H. Gain enhanced L-band Er3+-doped fiber amplifier utilizing unwanted backward ASE. IEEE Photonics Technology Letters, 2001, 13(10): 1067-1069

[7] Oh JM, Choi H B, Lee D, Ahn S J, Jung S J. Demonstration of highly efficient flat-gain L-band erbium-doped fiber amplifiers by incorporating a fiber Bragg grating. IEEE Photonics Technology Letters, 2002, 14(9): 1258-1260

Xu ZHANG, Deming LIU, Hairong LIU, Qizhen SUN, Zhifeng SUN, Ziheng XU, Wengang WANG. High-power EDFA applied in distributed optical fiber Raman temperature sensor system[J]. Frontiers of Optoelectronics, 2009, 2(2): 210. Xu ZHANG, Deming LIU, Hairong LIU, Qizhen SUN, Zhifeng SUN, Ziheng XU, Wengang WANG. High-power EDFA applied in distributed optical fiber Raman temperature sensor system[J]. Frontiers of Optoelectronics, 2009, 2(2): 210.

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