Mid-infrared mode-locked pulse generation with multilayer black phosphorus as saturable absorber.
暂无分享,去创建一个
Shuangchun Wen | Liejia Qian | Chujun Zhao | Zhipeng Qin | Guoqiang Xie | S. Wen | G. Xie | P. Yuan | L. Qian | Chujun Zhao | Z. Qin | Peng Yuan | Zhipeng Qin
[1] R. Norwood,et al. Passively continuous-wave mode-locked Er(3+)-doped ZBLAN fiber laser at 2.8 μm. , 2012, Optics letters.
[2] Y. Akahama,et al. Raman study of black phosphorus up to 13 GPa , 1997 .
[3] R. Soklaski,et al. Layer-controlled band gap and anisotropic excitons in few-layer black phosphorus , 2014 .
[4] Michael G. Spencer,et al. Measurement of Ultrafast Carrier Dynamics in Epitaxial Graphene , 2008 .
[5] Stuart D. Jackson,et al. Ultrafast pulses from a mid-infrared fiber laser. , 2015, Optics letters.
[6] Jaroslaw Sotor,et al. Ultrafast thulium-doped fiber laser mode locked with black phosphorus. , 2015, Optics letters.
[7] Meng Liu,et al. Microfiber-based few-layer black phosphorus saturable absorber for ultra-fast fiber laser. , 2015, Optics express.
[8] S. Wen,et al. Black phosphorus as saturable absorber for the Q-switched Er:ZBLAN fiber laser at 2.8 μm. , 2015, Optics express.
[9] S. Wen,et al. Watt-level passively mode-locked Er(3+)-doped ZBLAN fiber laser at 2.8 μm. , 2015, Optics letters.
[10] Ole Bang,et al. Supercontinuum generation in ZBLAN fibers—detailed comparison between measurement and simulation , 2012 .
[11] D. Tang,et al. Graphene mode-locked femtosecond laser at 2 μm wavelength. , 2012, Optics letters.
[12] S. Wen,et al. Broadband nonlinear optical response in multi-layer black phosphorus: an emerging infrared and mid-infrared optical material. , 2015, Optics express.
[13] Xi Dai,et al. Topological insulators in Bi2Se3, Bi2Te3 and Sb2Te3 with a single Dirac cone on the surface , 2009 .
[14] Jaroslaw Sotor,et al. Black phosphorus saturable absorber for ultrashort pulse generation , 2015 .
[15] Xiang Zhang,et al. A graphene-based broadband optical modulator , 2011, Nature.
[16] Michel Piché,et al. Femtosecond fiber lasers reach the mid-infrared , 2015 .
[17] Andre K. Geim,et al. Electric Field Effect in Atomically Thin Carbon Films , 2004, Science.
[18] Jérôme Genest,et al. Fiber Bragg grating stabilization of a passively mode-locked 2.8 μm Er³⁺: fluoride glass fiber laser. , 2014, Optics letters.
[19] Jing Li,et al. Exfoliated layers of black phosphorus as saturable absorber for ultrafast solid-state laser. , 2015, Optics letters.
[20] Joel E Moore,et al. The birth of topological insulators , 2010, Nature.
[21] P. Ye,et al. Semiconducting black phosphorus: synthesis, transport properties and electronic applications. , 2014, Chemical Society Reviews.
[22] SUPARNA DUTTASINHA,et al. Graphene: Status and Prospects , 2009, Science.
[23] Dianyuan Fan,et al. Few-layer black phosphorus based saturable absorber mirror for pulsed solid-state lasers. , 2015, Optics express.
[24] K. Novoselov,et al. Strong plasmonic enhancement of photovoltage in graphene. , 2011, Nature communications.
[25] Michael S. Fuhrer,et al. Realization and electrical characterization of ultrathin crystals of layered transition-metal dichalcogenides , 2007 .
[26] Yong Liu,et al. Efficient 2.87 μm fiber laser passively switched using a semiconductor saturable absorber mirror. , 2012, Optics letters.
[27] Likai Li,et al. Black phosphorus field-effect transistors. , 2014, Nature nanotechnology.
[28] L Zhang,et al. Evaluation of refractive-index and material dispersion in fluoride glasses. , 1994, Applied optics.
[29] B. L. Evans,et al. The preparation and properties of transition metal dichalcogenide single crystals , 1972 .
[30] Shuangchun Wen,et al. Mechanically exfoliated black phosphorus as a new saturable absorber for both Q-switching and Mode-locking laser operation. , 2015, Optics express.
[31] D. Hudson,et al. Stable, self-starting, passively mode-locked fiber ring laser of the 3 μm class. , 2014, Optics letters.
[32] A. Radenović,et al. Single-layer MoS2 transistors. , 2011, Nature nanotechnology.