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Performance study of mode-locked Er-doped fiber lasers based on nonlinear polarization rotation. / Luo, Xiaoyu; Li, Yu; Su, Xinyang и др.
в: Physica Scripta, Том 101, № 5, 055504, 30.01.2026.Результаты исследований: Научные публикации в периодических изданиях › статья › Рецензирование
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TY - JOUR
T1 - Performance study of mode-locked Er-doped fiber lasers based on nonlinear polarization rotation
AU - Luo, Xiaoyu
AU - Li, Yu
AU - Su, Xinyang
AU - Tian, Zhaoyang
AU - Du, Shuai
AU - Gu, Zhangyi
AU - Zhu, Jiayi
AU - He, Fei
AU - Li, Jianwei
AU - Zhang, Huaiwei
AU - Wang, Hanbin
AU - Wu, Yang
AU - Yang, He
AU - Sarkisov, Sergey
AU - Kobtsev, Sergey
N1 - Performance study of mode-locked Er-doped fiber lasers based on nonlinear polarization rotation / X. Luo, Yu. Li, X. Su [et al.] // Physica Scripta. – 2026. – Vol. 101, No. 5. – P. 055504. – DOI 10.1088/1402-4896/ae36fd. – EDN HLMODI.
PY - 2026/1/30
Y1 - 2026/1/30
N2 - Erbium-doped mode-locked fiber laser systems based on nonlinear polarization rotation (NPR) with different configurations are established. The mode-locking states under co-pumping and counter-pumping are achieved respectively through NPR, and the output spectra, input-output power curves, radio frequency (RF) spectra, and autocorrelation traces within the range of 1540–1600 nm are recorded. Meanwhile, in the case of co-pumping and shorter cavity, the mode-locking state is determined according to the angle of the three-paddle polarization controller (PC), and the analysis of the autocorrelation traces in the noise-like pulse (NLP) state is carried out. After the cavity length is shortened to 8.4 m, the transition between NLPs and soliton pulses is achieved through PC adjustment. Additionally, in the three-paddle PC (from the input to the output, the components are arranged sequentially as Paddle 1, Paddle 2, and Paddle 3) with co-pumping and 8.4 m cavity length, when two paddles are kept fixed and only one is rotated, different mode-locking states and output characteristics are achieved, and the autocorrelation traces of NLPs are obtained. By investigating the variation relationships of pedestal width and pedestal ratio Rc with respect to the change of a certain paddle angle, a foundation has been laid for the research on the regulation of mode-locking states and autocorrelation characteristics.
AB - Erbium-doped mode-locked fiber laser systems based on nonlinear polarization rotation (NPR) with different configurations are established. The mode-locking states under co-pumping and counter-pumping are achieved respectively through NPR, and the output spectra, input-output power curves, radio frequency (RF) spectra, and autocorrelation traces within the range of 1540–1600 nm are recorded. Meanwhile, in the case of co-pumping and shorter cavity, the mode-locking state is determined according to the angle of the three-paddle polarization controller (PC), and the analysis of the autocorrelation traces in the noise-like pulse (NLP) state is carried out. After the cavity length is shortened to 8.4 m, the transition between NLPs and soliton pulses is achieved through PC adjustment. Additionally, in the three-paddle PC (from the input to the output, the components are arranged sequentially as Paddle 1, Paddle 2, and Paddle 3) with co-pumping and 8.4 m cavity length, when two paddles are kept fixed and only one is rotated, different mode-locking states and output characteristics are achieved, and the autocorrelation traces of NLPs are obtained. By investigating the variation relationships of pedestal width and pedestal ratio Rc with respect to the change of a certain paddle angle, a foundation has been laid for the research on the regulation of mode-locking states and autocorrelation characteristics.
KW - fiber lasers
KW - mode-locking
KW - noise-like pulse
KW - nonlinear polarization rotation
UR - https://www.scopus.com/pages/publications/105033635066
UR - https://www.elibrary.ru/item.asp?id=90802444
UR - https://www.mendeley.com/catalogue/8521acc5-12f2-319c-8395-3a630c2cd2ea/
U2 - 10.1088/1402-4896/ae36fd
DO - 10.1088/1402-4896/ae36fd
M3 - Article
VL - 101
JO - Physica Scripta
JF - Physica Scripta
SN - 0031-8949
IS - 5
M1 - 055504
ER -
ID: 81232130