Few‐layer Bismuthene: Sonochemical Exfoliation, Nonlinear Optics and Applications for Ultrafast Photonics with Enhanced Stability

[1]  Yong Zhao,et al.  Magnetic Field Sensor Based on Photonic Crystal Fiber Taper Coated With Ferrofluid , 2015, IEEE Photonics Technology Letters.

[2]  Micklitz,et al.  Superconductivity in granular systems built from well-defined rhombohedral Bi-clusters: Evidence for Bi-surface superconductivity. , 1991, Physical review letters.

[3]  S. Arakelian,et al.  Laser-induced diffraction rings from a nematic-liquid-crystal film. , 1981, Optics letters.

[4]  I. Vurgaftman,et al.  Large magnetoresistance in postannealed Bi thin films , 2001 .

[5]  T. Nagao,et al.  Nanofilm allotrope and phase transformation of ultrathin Bi film on Si(111)-7x7. , 2004, Physical review letters.

[6]  C. Ast,et al.  Electronic structure of a bismuth bilayer , 2003 .

[7]  S. Wen,et al.  Broadband ultrafast spatial self-phase modulation for topological insulator Bi2Te3 dispersions , 2015 .

[8]  Jaroslaw Sotor,et al.  Sub-130 fs mode-locked Er-doped fiber laser based on topological insulator. , 2014, Optics express.

[9]  Yongli Gao,et al.  Broadband spatial self-phase modulation of black phosphorous. , 2016, Optics letters.

[10]  U. Keller Recent developments in compact ultrafast lasers , 2003, Nature.

[11]  Jie Zhang,et al.  Thermoelectric Properties of a Monolayer Bismuth , 2014 .

[12]  Harri Lipsanen,et al.  Polarization and Thickness Dependent Absorption Properties of Black Phosphorus: New Saturable Absorber for Ultrafast Pulse Generation , 2015, Scientific Reports.

[13]  Yang Guo,et al.  Superconductivity Modulated by Quantum Size Effects , 2004, Science.

[14]  Dong Liu,et al.  Distinguishing thermal lens effect from electronic third-order nonlinear self-phase modulation in liquid suspensions of 2D nanomaterials. , 2017, Nanoscale.

[15]  France.,et al.  Non-trivial surface-band dispersion on Bi(111) , 2013, 1303.1926.

[16]  Shuangchen Ruan,et al.  A practical topological insulator saturable absorber for mode-locked fiber laser , 2015, Scientific Reports.

[17]  P. Hofmann,et al.  The surfaces of bismuth: Structural and electronic properties , 2006 .

[18]  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.

[19]  Enge Wang,et al.  Purely coherent nonlinear optical response in solution dispersions of graphene sheets. , 2011, Nano letters.

[20]  S. Xiao,et al.  Dynamic self-diffraction in MoS(2) nanoflake solutions. , 2015, Optics express.

[21]  Manning,et al.  Nonlinear Optics for High-Speed Digital Information Processing. , 1999, Science.

[22]  Alain Haché,et al.  Ultrafast all-optical switching in a silicon-based photonic crystal , 2000 .

[23]  Shuangchen Ruan,et al.  Microfiber-based WS 2 -film saturable absorber for ultra-fast photonics , 2015 .

[24]  Meng Liu,et al.  Femtosecond pulse erbium-doped fiber laser by a few-layer MoS(2) saturable absorber. , 2014, Optics letters.

[25]  T. Nagao,et al.  Large surface-state conductivity in ultrathin Bi films , 2007 .

[26]  M. Jablonski,et al.  Laser mode locking using a saturable absorber incorporating carbon nanotubes , 2004, Journal of Lightwave Technology.

[27]  A. Ellis,et al.  Semiconductor laser amplifiers for ultrafast all-optical signal processing , 1997 .

[28]  Gee-Kung Chang,et al.  Dual-Wavelength Single-Longitudinal-Mode Tm-Doped Fiber Laser Using PM-CMFBG , 2015, IEEE Photonics Technology Letters.

[29]  J. Coleman,et al.  Tunable nonlinear refractive index of two-dimensional MoS 2 , WS 2 , and MoSe 2 nanosheet dispersions [Invited] , 2015 .

[30]  H. Zeng,et al.  Atomically thin arsenene and antimonene: semimetal-semiconductor and indirect-direct band-gap transitions. , 2015, Angewandte Chemie.

[31]  Andre K. Geim,et al.  Electric Field Effect in Atomically Thin Carbon Films , 2004, Science.

[32]  Zhenhua Ni,et al.  Atomic‐Layer Graphene as a Saturable Absorber for Ultrafast Pulsed Lasers , 2009, 0910.5820.

[33]  S. Meng,et al.  Emergence of electron coherence and two-color all-optical switching in MoS2 based on spatial self-phase modulation , 2015, Proceedings of the National Academy of Sciences.

[34]  J. G. Mavroides,et al.  Magnetoreflection studies on the band structure of bismuth-antimony alloys☆ , 1969 .

[35]  George I. Stegeman,et al.  Third order nonlinear integrated optics , 1988 .

[36]  Hoffman,et al.  Semimetal-to-semiconductor transition in bismuth thin films. , 1993, Physical review. B, Condensed matter.

[37]  M. Cardona,et al.  Second-order Raman scattering in the group-V b semimetals: Bi, Sb, and As , 1975 .

[38]  Shuichi Murakami,et al.  Quantum spin Hall effect and enhanced magnetic response by spin-orbit coupling. , 2006, Physical review letters.

[39]  P. Bøggild,et al.  The conductivity of Bi(111) investigated with nanoscale four point probes , 2008 .

[40]  Shuangchen Ruan,et al.  A 2.95 GHz, femtosecond passive harmonic mode-locked fiber laser based on evanescent field interaction with topological insulator film. , 2015, Optics express.

[41]  C. Ast,et al.  Fermi surface of Bi(111) measured by photoemission spectroscopy. , 2001, Physical review letters.

[42]  Zhinan Guo,et al.  Solvothermal Synthesis and Ultrafast Photonics of Black Phosphorus Quantum Dots , 2016 .

[43]  J. Issi Low-temperature Transport-properties of the Group-v Semimetals , 1979 .

[44]  Yongli Gao,et al.  Enhanced Nonlinear Optical Response of Rectangular MoS2 and MoS2/TiO2 in Dispersion and Film , 2016 .

[45]  J. Tauc,et al.  Optical properties and electronic structure of amorphous Ge and Si , 1968 .

[46]  Emmanuel Flahaut,et al.  Double-Wall Carbon Nanotubes for Wide-Band, Ultrafast Pulse Generation , 2014, ACS nano.

[47]  K. Loh,et al.  Graphene mode locked, wavelength-tunable, dissipative soliton fiber laser , 2010, 1003.0154.

[48]  R. Cava,et al.  Phase Transitions of Dirac Electrons in Bismuth , 2008, Science.

[49]  Shuangchun Wen,et al.  Self-Assembled Topological Insulator: Bi$_{2}$Se$_{3}$ Membrane as a Passive Q-Switcher in an Erbium-Doped Fiber Laser , 2013, Journal of Lightwave Technology.

[50]  Shuangchun Wen,et al.  Ytterbium-doped fiber laser passively mode locked by few-layer Molybdenum Disulfide (MoS2) saturable absorber functioned with evanescent field interaction , 2014, Scientific Reports.