Monolithic fiber laser oscillator with record high power
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Pengfei Ma | Pu Zhou | Xiaojun Xu | Qing Ye | Jinyong Leng | Chen Shi | Baolai Yang | Rumao Tao | Zejin Liu | Haoyang Pi | Hanwei Zhang | Xiaolin Wang | Zilun Chen | Jinbao Chen | Zilun Chen | Zejin Liu | Xiaojun Xu | Hanwei Zhang | P. Zhou | Jinbao Chen | Jinyong Leng | P. Ma | Xiaolin Wang | R. Tao | Baolai Yang | Chen Shi | Q. Ye | Haoyang Pi | Xiao-lin Wang | Jin-yong Leng | C. Shi | Jin-bao Chen
[1] Ramona Eberhardt,et al. Explanation of stimulated Raman scattering in high power fiber systems , 2018, LASE.
[2] Pengfei Ma,et al. 3.05 kW monolithic fiber laser oscillator with simultaneous optimizations of stimulated Raman scattering and transverse mode instability , 2018 .
[3] Fabian Stutzki,et al. Measuring thermal load in fiber amplifiers in the presence of transversal mode instabilities. , 2017, Optics letters.
[4] Xiaojun Xu,et al. Experimental Study of the Transverse Mode Instability in a 3kW-level Bidirectional-pumped All-fiber Laser Oscillator , 2017 .
[5] Xiangjie Meng,et al. 5 kW Near-Diffraction-Limited and 8 kW High-Brightness Monolithic Continuous Wave Fiber Lasers Directly Pumped by Laser Diodes , 2017, IEEE Photonics Journal.
[6] Qirong Xiao,et al. 3.1 kW monolithic MOPA configuration fibre laser bidirectionally pumped by non-wavelength-stabilized laser diodes , 2017 .
[7] J. Limpert,et al. Single mode 4.3 kW output power from a diode-pumped Yb-doped fiber amplifier. , 2017, Optics express.
[8] X. Gu,et al. Spectral shaping for suppressing stimulated-Raman-scattering in a fiber laser. , 2017, Applied optics.
[9] Pu Zhou,et al. High-power fiber lasers based on tandem pumping , 2017 .
[10] M. Morin,et al. SRS modeling in high power CW fiber lasers for component optimization , 2017, LASE.
[11] Keisuke Uchiyama,et al. 3 kW single stage all-fiber Yb-doped single-mode fiber laser for highly reflective and highly thermal conductive materials processing , 2017, LASE.
[12] Pengfei Ma,et al. Theoretical study of pump power distribution on modal instabilities in high power fiber amplifiers , 2017 .
[13] Pengfei Ma,et al. Suppressing mode instabilities by optimizing the fiber coiling methods , 2017 .
[14] Pu Zhou,et al. Mitigating transverse mode instability in all-fiber laser oscillator and scaling power up to 2.5 kW employing bidirectional-pump scheme. , 2016, Optics express.
[15] Xiaolong Wang,et al. 5kW GTWave fiber amplifier directly pumped by commercial 976nm laser diodes. , 2016, Optics express.
[16] Pengfei Ma,et al. General analysis of SRS-limited high-power fiber lasers and design strategy. , 2016, Optics express.
[17] Rongtao Su,et al. Mitigating transverse mode instability in a single-end pumped all-fiber laser oscillator with a scaling power of up to 2 kW , 2016 .
[18] J. Marciante,et al. The impact of thermal mode instability on core diameter scaling in high-power fiber amplifiers , 2016, 2016 Conference on Lasers and Electro-Optics (CLEO).
[19] X. Wang,et al. Bidirectional pumped high power Raman fiber laser. , 2016, Optics express.
[20] Daiichiro Tanaka,et al. 2 kW single-mode fiber laser with 20-m long delivery fiber and high SRS suppression , 2016, LASE.
[21] Pengfei Ma,et al. 1.89 kW all-fiberized and polarization-maintained amplifiers with narrow linewidth and near-diffraction-limited beam quality. , 2016, Optics express.
[22] Pengfei Ma,et al. Kilowatt-level fiber amplifier with spectral-broadening-free property, seeded by a random fiber laser. , 2015, Optics letters.
[23] M. Gong,et al. Stimulated Raman scattering threshold for partially coherent light in silica fibers. , 2015, Optics Express.
[24] Hanwei Zhang,et al. High-power 1018 nm ytterbium-doped fiber laser and its application in tandem pump. , 2015, Applied Optics.
[25] Pu Zhou,et al. Power scaling of narrowband high-power all-fiber superfluorescent fiber source to 1.87 kW. , 2015, Optics letters.
[26] Zejin Liu,et al. Mitigating of modal instabilities in linearly-polarized fiber amplifiers by shifting pump wavelength , 2014, 1412.0965.
[27] Pu Zhou,et al. 1.5 kW, near-diffraction-limited, high-efficiency, single-end-pumped all-fiber-integrated laser oscillator. , 2014, Applied optics.
[28] Zejin Liu,et al. 1.3 kW monolithic linearly polarized single-mode master oscillator power amplifier and strategies for mitigating mode instabilities , 2014, 1410.6336.
[29] Eric Honea,et al. Threshold power and fiber degradation induced modal instabilities in high-power fiber amplifiers based on large mode area fibers , 2014, Photonics West - Lasers and Applications in Science and Engineering.
[30] Pu Wang,et al. High-Power Thulium-Doped All-Fiber Superfluorescent Sources , 2014, IEEE Journal of Selected Topics in Quantum Electronics.
[31] K. Hejaz,et al. Controlling mode instability in a 500 W ytterbium-doped fiber laser , 2014 .
[32] Cesar Jauregui,et al. Temporal dynamics of mode instabilities in high-power fiber lasers and amplifiers. , 2012, Optics express.
[33] S. Babin,et al. Output spectrum of Yb-doped fiber lasers. , 2012, Optics letters.
[34] J. Broeng,et al. Thermally induced mode coupling in rare-earth doped fiber amplifiers. , 2012, Optics Letters.
[35] Peter Cheng,et al. 1.2-kW single-mode fiber laser based on 100-W high-brightness pump diodes , 2012, Other Conferences.
[36] Frank Becker,et al. High-power disk and fiber lasers: a performance comparison , 2012, Other Conferences.
[37] M. Kanskar,et al. 1-kilowatt CW all-fiber laser oscillator pumped with wavelength-beam-combined diode stacks. , 2012, Optics express.
[38] X. Gu,et al. Fiber Bragg grating in large-mode-area fiber for high power fiber laser applications. , 2010, Applied optics.
[39] Anping Liu,et al. Limit of Effective Area for Single-Mode Operation in Step-Index Large Mode Area Laser Fibers , 2009, Journal of Lightwave Technology.
[40] R. Beach,et al. Analysis of the scalability of diffraction-limited fiber lasers and amplifiers to high average power. , 2008, Optics express.
[41] Dietrich Marcuse,et al. Curvature loss formula for optical fibers , 1976 .