论文标题

来自色散的天线耦合平面环量子级联激光器的THZ光学孤子

THz optical solitons from dispersion-compensated antenna-coupled planarized ring quantum cascade lasers

论文作者

Micheletti, Paolo, Senica, Urban, Forrer, Andres, Cibella, Sara, Torrioli, Guido, Frankié, Martin, Faist, Jérôme, Beck, Mattias, Scalari, Giacomo

论文摘要

量子级联激光器(QCL)构成了生产片上光学耗散kerr孤子(DKS)的有趣机会:由于Kerr效应和分散体之间的相互作用,可以在保持其形状的同时传播自组织的光波。最近在中IR环QCL中观察到DK最初在被动微孔子中证明,即使在更长的波长下,DK也为其成就铺平了道路。为此,我们意识到,在基于波导平面化的技术平台上利用异常的分散剂,实现了无缺陷的THZ环QCL。在被动宽带靶向天线的同时,实施了一种同心耦合波导方法,以改善设备功率提取和远场。在这些设备中,为自由运行的操作提供了带有SECH $^2 $信封的梳子光谱。观察高度滞后行为以及相敏的测量结果进一步支持了孤子的存在的第一个暗示,这些测量表明在发射强度的重建时间曲线中存在自启动的12 ps长脉冲。这些观察结果与基于复杂的Ginzburg-Landau方程时间域求解器的数字模拟非常吻合。此类设备构成了一个新的实验平台,用于研究THZ范围内的孤子现象,还允许在芯片上,被动的超平脉冲产生,可吸引各种应用。

Quantum Cascade Lasers (QCL) constitute an intriguing opportunity for the production of on-chip optical Dissipative Kerr Solitons (DKS): self-organized optical waves which can travel while preserving their shape thanks to the interplay between Kerr effect and dispersion. Originally demonstrated in passive microresonators, DKS were recently observed in mid-IR ring QCL paving the way for their achievement even at longer wavelengths. To this end we realized defect-less THz ring QCLs featuring anomalous dispersion leveraging on a technological platform based on waveguide planarization. A concentric coupled-waveguide approach is implemented for dispersion compensation whilst a passive broadband bullseye antenna improves the device power extraction and far field. In these devices, comb spectra featuring sech$^2$ envelopes are presented for free-running operation. This first hint of the presence of solitons is further supported by the observation of highly hysteretic behaviour and by phase-sensitive measurements which show the presence of self-starting 12 ps-long pulses in the reconstructed time profile of the emission intensity. These observations are in very good agreement with our numeric simulations based on a Complex Ginzburg-Landau equation time-domain solver. Such devices constitute a new experimental platform for the study of soliton phenomena in the THz range, allowing as well on-chip, passive ultrashort THz pulse generation appealing for a variety of applications.

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