Li Hua, Wan Wenjian, Li Ziping, Cao J C, Lepillet Sylvie, Lampin Jean-Francois, Froberger Kevin, Columbo Lorenzo, Brambilla Massimo, Barbieri Stefano
Opt Express. 2022 Jan 31;30(3):3215-3229. doi: 10.1364/OE.444295.
Mode-locking operation and multimode instabilities in Terahertz (THz) quantum cascade lasers (QCLs) have been intensively investigated during the last decade. These studies have unveiled a rich phenomenology, owing to the unique properties of these lasers, in particular their ultrafast gain medium. Thanks to this, in QCLs a modulation of the intracavity field intensity gives rise to a strong modulation of the population inversion, directly affecting the laser current. In this work we show that this property can be used to study in real-time the dynamics of multimode THz QCLs, using a self-detection technique combined with a 60GHz real-time oscilloscope. To demonstrate the potential of this technique we investigate a 4.2THz QCL operating in free-running, and observe a self-starting periodic modulation of the laser current, producing trains of regularly spaced, ∼100ps-long pulses. Depending on the drive current we find two distinct regimes of oscillation with dramatically different properties: a first regime at the fundamental cavity repetition rate, characterised by large amplitude and phase noise, with coherence times of a few tens of periods; a much more regular second-harmonic-comb regime, with typical coherence times of ∼10 oscillation periods. We interpret these measurements using a set of effective semiconductor Maxwell-Bloch equations that qualitatively reproduce the fundamental features of the laser dynamics, indicating that the observed carrier-density and optical pulses are in antiphase, and appear as a rather shallow modulation on top of a continuous wave background. Thanks to its simple implementation and versatility, the demonstrated broadband self-detection technique is a powerful tool for the study of ultrafast dynamics in THz QCLs.
在过去十年中,人们对太赫兹(THz)量子级联激光器(QCL)中的锁模操作和多模不稳定性进行了深入研究。由于这些激光器的独特特性,特别是其超快增益介质,这些研究揭示了丰富的现象学。因此,在量子级联激光器中,腔内场强的调制会引起粒子数反转的强烈调制,直接影响激光电流。在这项工作中,我们表明,利用一种自检测技术与一台60GHz实时示波器相结合,可以实时研究多模太赫兹量子级联激光器的动力学。为了证明这种技术的潜力,我们研究了一个自由运行的4.2THz量子级联激光器,并观察到激光电流的自启动周期性调制,产生一系列等间距的、约100ps长的脉冲。根据驱动电流,我们发现了两种具有截然不同特性的明显振荡模式:第一种模式在基腔重复频率下,其特点是幅度和相位噪声较大,相干时间为几十周期;第二种模式是更规则的二次谐波梳状模式,典型相干时间约为10个振荡周期。我们使用一组有效的半导体麦克斯韦-布洛赫方程来解释这些测量结果,这些方程定性地再现了激光动力学的基本特征,表明观察到的载流子密度和光脉冲是反相的,并且表现为连续波背景上相当浅的调制。由于其简单的实现方式和通用性,所展示的宽带自检测技术是研究太赫兹量子级联激光器超快动力学的有力工具。