Generation of noise-like pulse using nickel-based metal-organic framework saturable absorber
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A. Abas | M. Alresheedi | E. K. Ng | J. Liew | M. Mahdi | N. Yusoff | Amir Murad
[1] Han Zhang,et al. Niobium telluride absorber for a mode-locked vector soliton fiber laser , 2023, Science China Physics, Mechanics & Astronomy.
[2] M. Mahdi,et al. Titania-coated silica nanocomposite for L-band noise-like pulse fiber laser , 2023, Journal of Luminescence.
[3] Wenfei Zhang,et al. Nanosized indium selenide saturable absorber for multiple solitons operation in Er3+-doped fiber laser. , 2023, Optics express.
[4] Linjun Li,et al. Ni-Doped Metal-Organic Frameworks as Nonlinear Optical Material Used in Saturable Absorption for Q-Switched Tm: YAP Laser , 2023, IEEE Journal of Selected Topics in Quantum Electronics.
[5] M. Yaacob,et al. Demonstration of multiple dissipative solitons with nickel-based metal organic framework saturable absorber , 2022, Jurnal OptoElektronik.
[6] Linjun Li,et al. A passively mode-locked of Tm:YAP laser with a zeolitic imidazolate frameworks-8 (ZIF-8) saturable absorber , 2022, Optik.
[7] M. Mahdi,et al. Nickle 1,3,5-Benzene-Tricarboxylic Acid-Metal Organic Framework Polymer Composite Saturable Absorber for Femtosecond Pulse Generation , 2022, SSRN Electronic Journal.
[8] Shutao Xu,et al. Noise-like pulse generation and amplification from soliton pulses. , 2022, Optics express.
[9] Yong Liu,et al. Mid-infrared optical switches enabled by metal-organic frameworks for compact high-power nanosecond laser sources at 3 µm. , 2022, Optics Express.
[10] C. Dai,et al. Harmonic dual-wavelength and multi-soliton pattern fiber laser based on GO-Sb2Se3 saturable absorbers , 2022, Optics & Laser Technology.
[11] S. Kobtsev. Artificial saturable absorbers for ultrafast fibre lasers , 2022, Optical Fiber Technology.
[12] C. Dai,et al. Generation and dynamics of soliton and soliton molecules from a VSe2/GO-based fiber laser , 2021, Nanophotonics.
[13] S. Ruan,et al. Stable noise-like pulse generation in all-PM mode-locked Tm-doped fiber laser based on NOLM , 2021, Chinese Optics Letters.
[14] M. Andrés,et al. The nonlinear optical loop mirror: soliton and noise-like pulse emission in a figure-eight fiber laser , 2021 .
[15] Chenyu Gao,et al. High-energy noise-like pulses generated by an erbium-doped fiber laser incorporating a PbS quantum-dot polystyrene composite film , 2021, Journal of Physics: Photonics.
[16] Jiyeol Bae,et al. Terephthalate and trimesate metal–organic frameworks of Mn, Co, and Ni: exploring photostability by spectroscopy , 2021, RSC advances.
[17] Bowen Liu,et al. Route to stable dispersion-managed mode-locked Yb-doped fiber lasers with near-zero net cavity dispersion. , 2020, Optics express.
[18] Runlai Li,et al. Conventional Soliton and Noise-Like Pulse Generated in an Er-Doped Fiber Laser with Carbon Nanotube Saturable Absorbers , 2020, Applied Sciences.
[19] G. Shan,et al. Functional Porous MOF-Derived CuO Octahedra for Harmonic Soliton Molecule Pulses Generation , 2020 .
[20] Dengwang Li,et al. Tellurene-based saturable absorber to demonstrate large-energy dissipative soliton and noise-like pulse generations , 2020 .
[21] M. Mahdi,et al. Saturable absorber incorporating graphene oxide polymer composite through dip coating for mode-locked fiber laser , 2020 .
[22] H. Schneider,et al. Demonstration of a Broadband Photodetector Based on a Two‐Dimensional Metal–Organic Framework , 2020, Advanced materials.
[23] M. Tarabrin,et al. Generation of multi-solitons and noise-like pulses in a high-powered thulium-doped all-fiber ring oscillator , 2019, Scientific Reports.
[24] Avery E. Baumann,et al. Metal-organic framework functionalization and design strategies for advanced electrochemical energy storage devices , 2019, Communications Chemistry.
[25] Yanli Zhao,et al. Bioengineering of Metal-organic Frameworks for Nanomedicine , 2019, Theranostics.
[26] Xiaofa Wang,et al. A 1.9 μm noise-like mode-locked fiber laser based on compact figure-9 resonator , 2019, Optics Communications.
[27] Maciej Wojtkowski,et al. Two-photon imaging of the mammalian retina with ultrafast pulsing laser. , 2018, JCI insight.
[28] W. Lu,et al. Ultrathin Metal–Organic Framework: An Emerging Broadband Nonlinear Optical Material for Ultrafast Photonics , 2018, Advanced Optical Materials.
[29] Zhi Wang,et al. Noise-like pulses generated from a passively mode-locked fiber laser with a WS2 saturable absorber on microfiber , 2018, Laser Physics Letters.
[30] Zhiqiang Yu,et al. Noise-like pulse erbium-doped fiber laser for supercontinuum generation , 2018 .
[31] Peyman Z. Moghadam,et al. Development of a Cambridge Structural Database Subset: A Collection of Metal-Organic Frameworks for Past, Present, and Future , 2017 .
[32] Yudong Cui,et al. Bandwidth-tunable dissipative soliton and noise-like pulse in a normal dispersion fiber laser with a dual-scale saturable absorber , 2016 .
[33] Jaroslaw Sotor,et al. Amplification of noise-like pulses generated from a graphene-based Tm-doped all-fiber laser. , 2016, Optics express.
[34] Alan X. Wang,et al. Near-infrared absorption gas sensing with metal-organic framework on optical fibers , 2016 .
[35] Jaroslaw Sotor,et al. Ultra-broadband dissipative soliton and noise-like pulse generation from a normal dispersion mode-locked Tm-doped all-fiber laser. , 2016, Optics express.
[36] Ci-Ling Pan,et al. Ultrahigh-resolution optical coherence tomography at 1.3 μm central wavelength by using a supercontinuum source pumped by noise-like pulses , 2016 .
[37] P. Arya,et al. Dependence of solvents, pH, molar ratio and temperature in tuning metal organic framework architecture , 2016, Arabian Journal of Chemistry.
[38] K. Sugioka,et al. Ultrafast lasers—reliable tools for advanced materials processing , 2014, Light: Science & Applications.
[39] Shuangchun Wen,et al. The formation of various multi-soliton patterns and noise-like pulse in a fiber laser passively mode-locked by a topological insulator based saturable absorber , 2014 .
[40] Michael O’Keeffe,et al. The Chemistry and Applications of Metal-Organic Frameworks , 2013, Science.
[41] S. Edwardson,et al. Effects of laser operating parameters on metals micromachining with ultrafast lasers , 2009 .
[42] S. Wen,et al. Effect of birefringence on the bandwidth of noise-like pulse in an erbium-doped fiber laser , 2009 .
[43] B. C. Daly,et al. Characterization of Mechanical and Thermal Properties Using Ultrafast Optical Metrology , 2006 .
[44] Chinlon Lin,et al. Self-phase modulation in silica optical fibers (A) , 1978 .
[45] Ya-ni Zhang,et al. Mof-Derived Porous Nio-Co3o4 for High Performance Ultrafast Pulse Generation , 2022, SSRN Electronic Journal.
[46] J. E. Ellis,et al. Metal–organic framework thin films as versatile chemical sensing materials , 2021, Materials Advances.
[47] A. Luo,et al. Graphene-Decorated Microfiber Photonic Device for Generation of Rogue Waves in a Fiber Laser , 2017, IEEE Journal of Selected Topics in Quantum Electronics.
[48] Junsu Lee,et al. Numerical study on the minimum modulation depth of a saturable absorber for stable fiber laser mode locking , 2015 .
[49] H. Lubatschowski. Ultrafast lasers in ophthalmology , 2010 .
[50] Jiajun Tian,et al. Tunable soliton molecules in mode-locked fiber laser based on GeBi4Te7 saturable absorber , 2022, Optics & Laser Technology.