Niobium telluride absorber for a mode-locked vector soliton fiber laser

被引:0
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作者
XinXin Shang
NanNan Xu
Jia Guo
Shuo Sun
HuaNian Zhang
S. Wageh
Ahmed A. Al-Ghamdi
Han Zhang
DengWang Li
机构
[1] Shandong Normal University,Shandong Province Key Laboratory of Medical Physics and Image Processing Technology, Shandong Provincial Key Laboratory of Optics and Photonic Device, School of Physics and Electronics
[2] Shenzhen University,Institute of Microscale Optoelectronics, Collaborative Innovation Center for Optoelectronic Science & Technology, Key Laboratory of Optoelectronic Devices and Systems of Ministry of Education and Guangdong Province, College of Physics a
[3] Shandong University of Technology,Nano Photonic Information Technology, Guangdong Laboratory of Artificial Intelligence and Digital Economy (SZ)
[4] King Abdulaziz University,School of Physics and Optoelectronic Engineering
来源
Science China Physics, Mechanics & Astronomy | 2023年 / 66卷
关键词
niobium telluride; saturable absorber; mode-locked pulse; fiber laser;
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中图分类号
学科分类号
摘要
Niobium telluride (NbTe2), an emerging transition metal dichalcogenide material, has been theoretically predicted to have nonlinear absorption properties and excellent optical response. However, only a few studies of the utilization of NbTe2 in ultrafast photonics have been reported. In this work, a NbTe2-based saturable absorber (SA) was applied in an erbium-doped fiber as a mode-locked device, and a vector soliton based on NbTe2 was obtained for the first time. NbTe2-PVA film SA was successfully prepared by the liquid-phase exfoliation and spin coating methods, with a modulation depth of up to 10.87%. The nonlinear absorption coefficient of NbTe2-based SA film tested through the open-aperture Z-scan laser measurement is 0.62 × 10 −11 m/W. A conventional soliton with a pulse duration of 858 fs was generated using NbTe2-based SA, which was demonstrated to be a kind of polarization-locked vector soliton in further investigation. Our experimental results reveal the nonlinear optical properties of NbTe2 and broaden its applications in ultrafast photonic devices.
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