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Molybdenum Carbide Buried in D-Shaped Fibers as a Novel Saturable Absorber Device for Ultrafast Photonics Applications

作者:Sicong Liu, Shiguang Shang, Ruidong Lv, Yonggang Wang, Yonggang Wang, Jiang Wang, Wei Ren, Yishan Wang, Yishan Wang · 发表于:ACS Applied Materials & Interfaces · 年份:2021 · DOI:10.1021/acsami.1c01345 · 被引用次数:23 · 研究领域:Advanced Fiber Laser Technologies、Nonlinear Photonic Systems、Laser-Matter Interactions and Applications

Study of nonlinear laser–matter interactions in 2D materials has promoted development of photonics applications. As a typical MXene material, molybdenum carbide (Mo 2 C) has attracted much attention because of its graphene-like structure. Here, a type of D-shaped fiber (DF)-buried Mo 2 C saturable absorber (SA) fabricated by magnetron-sputtering deposition (MSD) and sol–gel technique is reported. The Mo 2 C material was buried between the bottom DF and the upper amorphous silica fabricated by sol–gel technology. Therefore, the DF-based SA effectively solves the problem of material shedding and aging, thus improving the stability and damage threshold of the fiber laser. Application of the SA in erbium-doped fiber laser and stable passive Q-switched operation with a maximum pulse energy of 430.47 nJ is realized. By adjusting the polarization state and pump power, high-power mode-locked pulses are generated with a pulse duration and output power of 199 fs and 54.13 mW, respectively. Further, bound-state soliton pulses are obtained with a pulse width of 312 fs and soliton interval of 1.26 ps for the first time based on MXene materials. Moreover, by application of the SA in ytterbium-doped fiber lasers, a stable dissipative soliton mode-locked pulse is obtained with a pulse width of 23 ps. These results indicate that the DF-based buried Mo 2 C as a novel SA provides a reliable method for all-fiber and multifunctional high-power ultrafast laser.