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Dispersion-managed breathing-mode semiconductor mode-locked ring laser: Experimental study, numerical simulations and applications.

机译:色散管理的呼吸模式半导体锁模环形激光器:实验研究,数值模拟和应用。

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摘要

A novel dispersion-managed breathing-mode semiconductor mode-locked ring laser is developed. The "breathing-mode" designation derives from the fact that intracavity pulses are alternately stretched and compressed as they circulate around the ring resonator. The pulses are stretched before entering the semiconductor gain medium to minimize the detrimental strong integrating self-phase modulation and to enable efficient pulse amplification. Subsequently compressed pulses facilitate bleaching the semiconductor saturable absorber. The intracavity pulse compression ratio is higher than 50. Down chirping when compared to up chirping allows broader mode-locked spectra and shorter pulse generation owing to temporal and spectral semiconductor gain dynamics. Pulses as short as 185 fs, with a peak power of ∼230 W, and a focused intensity of ∼4.6 GW/cm2 are generated by linear down chirp compensation and characterized by SHG-FROG method. To our knowledge, this is the highest peak power and the shortest pulse generation from an electrically pumped all-semiconductor system. The very good agreement between the simulated and the measured results verifies our understanding and ability to control the physical mechanisms involved in the pulse shaping within the ring cavity. Application trends such as continuum generation via a photonic crystal fiber, two-photon fluorescence imaging, and ultrafast pulse source for pump-probe experiments are demonstrated.
机译:开发了一种新型的色散管理呼吸模式半导体锁模环形激光器。 “呼吸模式”的命名源于腔内脉冲在环形谐振器周围循环时交替拉伸和压缩的事实。脉冲在进入半导体增益介质之前被拉伸,以最大程度地减少有害的强积分自相位调制并实现有效的脉冲放大。随后的压缩脉冲有助于漂白半导体可饱和吸收体。腔内脉冲压缩比高于50。由于时间和频谱半导体增益的动态变化,与向上线性调频相比,向下线性调频可提供更宽的锁模频谱和更短的脉冲生成。通过线性下线性线性调频线性调频补偿产生短至185 fs的脉冲,峰值功率约为230 W,聚焦强度约为4.6 GW / cm2,并通过SHG-FROG方法进行了表征。据我们所知,这是电泵浦全半导体系统产生的最高峰值功率和最短的脉冲。模拟结果和测量结果之间的良好一致性验证了我们对环腔内脉冲成形所涉及的物理机制的理解和控制能力。展示了应用趋势,例如通过光子晶体光纤连续体生成,两光子荧光成像以及用于泵浦探针实验的超快脉冲源。

著录项

  • 作者

    Resan, Bojan.;

  • 作者单位

    University of Central Florida.;

  • 授予单位 University of Central Florida.;
  • 学科 Physics Optics.; Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 135 p.
  • 总页数 135
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 光学;无线电电子学、电信技术;
  • 关键词

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