Wang Qingbo, Kang Jianlong, Wang Pan, He Jiangyong, Liu Yicong, Wang Zhi, Zhang Han, Liu Yan-Ge
Institute of Modern Optics, Nankai University, Tianjin Key Laboratory of Micro-scale Optical Information Science and Technology, Tianjin 300350, China.
College of Physics and Optoelectronic Engineering, Shenzhen University, Shenzhen 518060, China.
Nanophotonics. 2022 May 17;11(13):3127-3137. doi: 10.1515/nanoph-2022-0161. eCollection 2022 Jun.
Passively mode-locked lasers have been widely investigated as one of the effective methods to obtain ultrashort pulses. As an important part of passively mode-locked fiber lasers, the exploration of 2D material-based saturable absorber has become one of the hotspots in ultrafast photonics in recent years. Germanene, a novel 2D Dirac material, with ultrafast optical response and broadband optical absorption, is a promising alternative material for saturable absorber in mode-locked fiber lasers. In this paper, germanium nanosheets are prepared via liquid-phase exfoliated method, with the saturable absorption property systematically characterized in three major wavebands of the near-infrared region. The generation of ultrashort pulses based on germanene saturable absorber in fiber lasers is further realized, in a broad waveband (1000 nm) centered at 1061.1, 1559.3 and 1883.5 nm, respectively. In addition, noise-like pulses operation with central wavelength of 1558.6 nm is also obtained, and the formation of rogue waves is further demonstrated via statistical analysis. To the best of our knowledge, this is the first experimental verification of the broadband saturable absorption property of germanene-based devices, covering three major fiber laser wavelengths from 1.0 to 2.0 μm.
被动锁模激光器作为获得超短脉冲的有效方法之一,已得到广泛研究。作为被动锁模光纤激光器的重要组成部分,基于二维材料的可饱和吸收体的探索近年来已成为超快光子学的热点之一。锗烯是一种新型二维狄拉克材料,具有超快光学响应和宽带光吸收特性,是锁模光纤激光器中可饱和吸收体的一种有前途的替代材料。本文通过液相剥离法制备了锗纳米片,并在近红外区域的三个主要波段系统地表征了其可饱和吸收特性。进一步实现了基于锗烯可饱和吸收体的光纤激光器在分别以1061.1、1559.3和1883.5 nm为中心的宽波段(1000 nm)内产生超短脉冲。此外,还获得了中心波长为1558.6 nm的类噪声脉冲输出,并通过统计分析进一步证明了 rogue 波的形成。据我们所知,这是首次对基于锗烯的器件在1.0至2.0μm的三个主要光纤激光波长范围内的宽带可饱和吸收特性进行实验验证。