来自几周期 Cr:ZnS 激光器的中红外超快孤子分子

IF 3.2 2区 物理与天体物理 Q2 OPTICS Optics express Pub Date : 2024-09-17 DOI:10.1364/oe.537071
Xiyue Zhang, Yuchen Wang, Weibo Wu, Tinghui An, Yiguang Jiang, Jintai Fan, Benxue Jiang, Pinghua Tang, Gianluca Galzerano, Paolo Laporta, Long Zhang
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引用次数: 0

摘要

孤子分子或孤子束缚态有望在基础研究和应用领域带来深远的变化。在此,我们报告了基于 2.4 µm 的 Kerr 透镜模式锁定单晶 Cr:ZnS 激光器的孤子分子的产生和精确操纵。在经典孤子机制中,以 173 MHz 的重复频率和 572 mW 的平均输出功率,获得了持续时间为 37 fs、小于 5 个光学周期的自启动近变限脉冲。通过微调腔体群延迟色散曲线,观测到了脉冲持续时间介于 55 fs 和 98 fs 之间、时间间隔介于 348 fs 和 604 fs 之间的双oliton 状态,并对其进行了表征。据我们所知,这是迄今为止在中红外区域所报道的脉冲持续时间和孤子分子间隔最短的。可调谐中红外孤子分子源能够精确操纵在亚 100 fs 时间尺度上产生的孤子分子,为电信和超快激光技术领域的应用铺平了道路。
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Mid-infrared ultrafast soliton molecules from a few-cycle Cr:ZnS laser
Soliton molecules, or soliton bound states, are envisioned to make far-reaching changes in both fundamental research and applications. Here, we report on the generation and precision manipulation of soliton molecules based on a Kerr-lens mode-locked single-crystal Cr:ZnS laser at 2.4 µm. In the classical soliton regime, self-starting near-transform-limited pulses with a duration of 37 fs, less than 5 optical cycles, have been obtained at a repetition frequency of 173 MHz and an average output power of 572 mW. By fine-tuning the cavity group-delay dispersion profile, bi-soliton states with pulse durations between 55 fs and 98 fs with temporal separations between 348 fs and 604 fs have been observed and characterized. These are the shortest pulse duration and separation of soliton molecules reported so far in the mid-infrared region, to the best of our knowledge. With the ability of precision manipulation of soliton molecules generated on a sub-100-fs timescale, the tunable mid-infrared soliton molecule source paves the way for applications in the fields of telecommunications and ultrafast laser technologies.
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来源期刊
Optics express
Optics express 物理-光学
CiteScore
6.60
自引率
15.80%
发文量
5182
审稿时长
2.1 months
期刊介绍: Optics Express is the all-electronic, open access journal for optics providing rapid publication for peer-reviewed articles that emphasize scientific and technology innovations in all aspects of optics and photonics.
期刊最新文献
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