Liu Ji-Shu, Li Xiao-Hui, Qyyum Abdul, Guo Yi-Xuan, Chai Tong, Xu Hua, Jiang Jie
School of Physics & Information Technology, Shaanxi Normal University, Xi'an 710119, China.
Shaanxi Key Laboratory for Advanced Energy Devices, School of Materials Science and Engineering, Shaanxi Normal University, Xi'an 710119, China.
Beilstein J Nanotechnol. 2019 May 20;10:1065-1072. doi: 10.3762/bjnano.10.107. eCollection 2019.
FeO nanoparticles (FONPs) are magnetic materials with a small band gap and have well-demonstrated applications in ultrafast photonics, medical science, magnetic detection, and electronics. Very recently, FONPs were proposed as an ideal candidate for pulse generation in fiber-based oscillators. However, the pulses obtained to date are on the order of microseconds, which is too long for real application in communication. Here, we report the use of FONPs synthesized by a sol-hydrothermal method and used as a saturable absorber (SA) to achieve nanosecond pulses in an erbium-doped fiber laser (EDFL) for the first time. The proposed fiber laser is demonstrated to have a narrow spectral width of around 0.8 nm and a fixed fundamental repetition rate (RPR) of 4.63 MHz, whose spectra and pulse dynamics are different from the mode-locked lasers reported previously. It is demonstrated that the proposed fiber laser based on a FONP SA operates in the giant-chirp mode-locked regime. The most important result is the demonstration of a pulse duration of 55 ns at an output power of 16.2 mW, which is the shortest pulse based on FONPs for EDFLs reported to date. Our results demonstrate that the FONP dispersion allows for an excellent photonic material for application in ultrafast photonics devices, photoconductive detectors, and optical modulators.
氧化亚铁纳米颗粒(FONPs)是具有小带隙的磁性材料,在超快光子学、医学、磁检测和电子学等领域已得到充分证明的应用。最近,FONPs被提议作为基于光纤的振荡器中脉冲产生的理想候选材料。然而,迄今为止获得的脉冲在微秒量级,对于通信中的实际应用来说太长了。在此,我们首次报告了使用通过溶胶 - 水热法合成的FONPs作为可饱和吸收体(SA)在掺铒光纤激光器(EDFL)中实现纳秒脉冲。所提出的光纤激光器被证明具有约0.8 nm的窄光谱宽度和4.63 MHz的固定基频重复率(RPR),其光谱和脉冲动力学与先前报道的锁模激光器不同。结果表明,所提出的基于FONP SA的光纤激光器工作在巨啁啾锁模状态。最重要的结果是在输出功率为16.2 mW时展示了55 ns的脉冲持续时间,这是迄今为止报道的基于FONPs的EDFL中最短的脉冲。我们的结果表明,FONP色散使其成为适用于超快光子学器件、光电导探测器和光调制器的优异光子材料。