Gain saturation and optical feedback mediated semiconductor laser statistics, dynamics, and intensity noise

被引:0
|
作者
Abdulrhmann, Salah [1 ]
Alhasan, Abu Mohamed [2 ]
Hakami, Jabir [1 ]
机构
[1] Jazan Univ, Coll Sci, Dept Phys Sci, Phys Div, POB 114, Jazan 45142, Saudi Arabia
[2] Assiut Univ, Fac Sci, Phys Dept, Assiut 71516, Egypt
关键词
Semiconductor lasers; Optical feedback; Intensity noise; Probability density distribution; Chaos; NONLINEAR-GAIN; QUANTUM-NOISE; CHAOS; COMPLEXITY; DIODES;
D O I
10.1016/j.optcom.2025.131595
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
In this work, we systematically studied the effects of gain saturation or nonlinear Gain (NLG) and optical feedback (OFB) on the dynamics, intensity noise, and probability density distributions (PDDs) of semiconductor lasers (SLs). By examining the temporal trajectory of photon numbers and bifurcation diagrams, we shed light on laser behavior under varying conditions. Our simulations reveal that including NLG and OFB in the rate equations leads to substantial changes in operational states and noise characteristics. Notably, when lasers operate in continuous wave (CW) or periodic oscillation (PO) modes, relative intensity noise (RIN) is suppressed when NLG is considered. As OFB strength increases, PDDs transition from symmetric to asymmetric forms. In chaotic regions, these PDDs exhibit a peak at low intensity, decreasing at multiples of the average photon number. Additionally, under strong OFB, incorporating NLG can shift laser dynamics from chaotic behavior to POs or CW operation. The presence of NLG further enhances stability and accentuates this behavior by displaying a peak near the average photon number, which is notably diminished without NLG. By incorporating NLG, we find a reduction in the standard deviation of fluctuations. Overall, our findings highlight the importance of NLG and OFB for reducing instability in SLs, paving the way for the development of higher-performance laser systems.
引用
收藏
页数:9
相关论文
共 50 条
  • [41] Numerical study of optical feedback coherence in semiconductor laser dynamics
    Radziunas, Mindaugas
    Little, Douglas J.
    Kane, Deborah M.
    OPTICS LETTERS, 2019, 44 (17) : 4207 - 4210
  • [42] Control of nonlinear dynamics of a semiconductor laser with filtered optical feedback
    Yousefi, M
    Lenstra, D
    Vemuri, G
    Fischer, A
    IEE PROCEEDINGS-OPTOELECTRONICS, 2001, 148 (5-6): : 233 - 237
  • [43] BISTABILITY AND INTENSITY NOISE OF SEMICONDUCTOR-LASERS DUE TO WEAK OPTICAL FEEDBACK
    SATO, H
    MATSUI, Y
    OHYA, J
    SERIZAWA, H
    JOURNAL OF APPLIED PHYSICS, 1988, 63 (07) : 2200 - 2205
  • [44] Quantum noise limits of a semiconductor laser with dispersive optical feedback.
    Shevy, Y
    Deng, H
    Mahnkopf, S
    Kitching, J
    Yariv, A
    LASER RESONATORS II, 1999, 3611 : 56 - 64
  • [45] Interplay of Current Noise and Delayed Optical Feedback on the Dynamics of Semiconductor Lasers
    Soriano, Miguel C.
    Berkvens, Thomas
    Van der Sande, Guy
    Verschaffelt, Guy
    Danckaert, Jan
    Fischer, Ingo
    IEEE JOURNAL OF QUANTUM ELECTRONICS, 2011, 47 (03) : 368 - 374
  • [46] Intensity noise and linewidth of laser diodes with integrated semiconductor optical amplifier
    Morthier, G
    Moeyersoon, B
    IEEE PHOTONICS TECHNOLOGY LETTERS, 2002, 14 (12) : 1644 - 1646
  • [47] Relative intensity noise for laser diodes with arbitrary amounts of optical feedback
    Kallimani, KI
    O'Mahony, MJ
    IEEE JOURNAL OF QUANTUM ELECTRONICS, 1998, 34 (08) : 1438 - 1446
  • [48] Relative intensity noise for laser diodes with arbitrary amounts of optical feedback
    Univ of Bath, Bath, United Kingdom
    IEEE J Quantum Electron, 8 (1438-1446):
  • [49] Comparison of the effects of nonlinear gain and weak optical feedback on the dynamics of semiconductor lasers
    Masoller, C
    IEEE JOURNAL OF QUANTUM ELECTRONICS, 1997, 33 (05) : 804 - 814
  • [50] Optical spectral bistability in a semiconductor fiber ring laser through gain saturation in an SOA
    Xu, L
    Wang, BC
    Baby, V
    Glesk, I
    Prucnal, PR
    IEEE PHOTONICS TECHNOLOGY LETTERS, 2002, 14 (02) : 149 - 151