期刊文献+

Dual-Wavelength Holmium-Doped Fiber Laser Pumped by Thulium-Ytterbium Co-Doped Fiber Laser

Dual-Wavelength Holmium-Doped Fiber Laser Pumped by Thulium-Ytterbium Co-Doped Fiber Laser
下载PDF
导出
摘要 We present an all-fiber dual-wavelength holmium-doped veloped holmium-doped fiber (HDF) as a gain medium fiber laser operating in 2 #m region using a newly de- The proposed fiber laser is constructed by using a hybrid gain medium, i.e., a thulium ytterbium co-doped fiber (TYDF) and an HDF in conjunction with a simple half-opened linear cavity, which is formed by a broadband mirror and an output coupler reflector. Without the HDF, the TYDF laser operates at wavelengths of 1991 and 1999nm with a signal-to-noise ratio of more than 34dB and the slope efficiency of 26.16 %. With the HDF, dual-wavelength output lines are obtained at 2075 and 2083nm with signal-to-noise ratios of more than difference between the two peaks of less than 1 dB at 17dB, 3dB bandwidth of less than 0.2nm and the power the TYDF laser pump power of 320roW. We present an all-fiber dual-wavelength holmium-doped veloped holmium-doped fiber (HDF) as a gain medium fiber laser operating in 2 #m region using a newly de- The proposed fiber laser is constructed by using a hybrid gain medium, i.e., a thulium ytterbium co-doped fiber (TYDF) and an HDF in conjunction with a simple half-opened linear cavity, which is formed by a broadband mirror and an output coupler reflector. Without the HDF, the TYDF laser operates at wavelengths of 1991 and 1999nm with a signal-to-noise ratio of more than 34dB and the slope efficiency of 26.16 %. With the HDF, dual-wavelength output lines are obtained at 2075 and 2083nm with signal-to-noise ratios of more than difference between the two peaks of less than 1 dB at 17dB, 3dB bandwidth of less than 0.2nm and the power the TYDF laser pump power of 320roW.
出处 《Chinese Physics Letters》 SCIE CAS CSCD 2016年第5期39-42,共4页 中国物理快报(英文版)
基金 Supported by the University of Malaya under Grant No PG175-2015B
  • 相关文献

参考文献9

  • 1Cariou J P, Augere B and Valla M 2006 C. R. Phys. 7 213.
  • 2Scholle K, Lamrini S, Koopmann P and Fuhrberg P 2010 Frontiers in Guided Wave Optics and Optoelectronics (Croatia: InTech) chap 21 p 471.
  • 3Zeller W, Naehle L, Fuchs P, Gerschuetz F, Hildebrandt L and Koeth J 2010 Sensors 10 2492.
  • 4Fried N M and Murray K E 2005 J. Endourol. 19 25.
  • 5Szlauer R, G?tschl R, Razmaria A, Paras L and Schmeller N T 2009 Eur. Urol. 55 368.
  • 6Liu W, Jiang M, Chen D and He S 2009 J. Lightwave Technol. 27 4455.
  • 7Liu S, Yan F, Feng T, Wu B, Dong Z and Chang G K 2014 Appl. Opt. 53 5522.
  • 8Huang H C, Yang T, Yuan X Z and Yang Z M 2014 Chin. Phys. Lett. 31 014204.
  • 9Ismail M F, Dernaika M, Khodaei A, Harun S W and Ahmad H 2015 J. Mod. Opt. 62 892.

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部