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New generation of InGaAs-based saturable absorbers for ultrafast fiber lasers

机译:新一代基于InGaAs的可饱和吸收体,用于超快光纤激光器

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Ultrafast fiber laser technology is nowadays a mature field with numerous industrial and scientific applications ranging from material processing to microscopy and metrology. As a consequence, the available output power of ultrafast fiber lasers has followed a remarkable growth in the last decade. The technological maturity and commercial availability of semiconductor saturable absorber mirrors (SESAMs) play a key role in this progress as they are essential for ultrashort pulse generation in passively mode-locked lasers [1] and can now cover a broad spectral range. In order to efficiently initiate mode-locking in fiber lasers, such SeSaMs must exhibit very strong nonlinearities and in particular, in the case of dissipative soliton lasers, high modulation depths of several tens of percent are required to stabilize the pulsed regime [2, 3]. Such performances are today reached with multiple quantum wells (MQW) saturable absorbers embedded in resonant Fabry-Perot cavities [4] and with the introduction of impurities in the active area in order to lower the carriers' lifetime. An accurate control of the growth process is however required to obtain satisfying optical properties. Even if simplified technologies have been developed, e.g. based on carbon nanotubes or topological insulators, they cannot be implemented in a large scale with reproducible processes and thus cannot answer the current need for efficient mass-production of SESAMs. Here, we present a novel SESAM architecture with a simplified fabrication process based on Metal Organic Chemical Vapor Deposition (MOCVD), which is cost effective and more adapted for large-scale fabrication than standard molecular beam epitaxy used for growing current commercial saturable absorber devices. This new generation of SESAMs is based on a thick InGaAs layer embedded into a resonant Fabry-Perot micro-cavity, as shown in Fig. 1(a). In order to demonstrate the great potential of our SESAM for ultrafast lasers, we successfully used it to achieve stable mode-locking in a normal dispersion erbium-doped fiber laser without using any additional mechanism such as nonlinear polarisation evolution, hence reducing the laser cavity to a compact and user-friendly configuration (see Fig. 1(a)). Highly-chirped dissipative solitons with 19.5 ps duration and 5.4 nm width were obtained, as shown in Fig. 1(b). Pulses have then been externally compressed down to 1.1 ps and our system showed an excellent amplitude stability with a signal-to-noise ratio exceeding 90 dB. The laser delivers an average power of 86 mW at 17 MHz repetition rate, corresponding to an energy per pulse of 5 nJ. This work suggests that this new generation of SESAM with reduced fabrication costs can be considered as a promising alternative to current technologies in the frame of ultrafast lasers development and apphcations.
机译:如今,超快光纤激光技术已经成为一个成熟的领域,具有从材料加工到显微镜和计量学的众多工业和科学应用。结果,在过去十年中,超快光纤激光器的可用输出功率出现了惊人的增长。半导体可饱和吸收镜(SESAM)的技术成熟度和商业可得性在这一进展中起着关键作用,因为它们对于被动锁模激光器中超短脉冲的产生至关重要[1],并且现在可以涵盖广泛的光谱范围。为了有效地启动光纤激光器中的锁模,此类SeSaM必须表现出非常强的非线性,特别是在耗散孤子激光器的情况下,需要数十%的高调制深度来稳定脉冲状态[2,3 ]。今天,通过嵌入谐振法布里-珀罗腔中的多个量子阱(MQW)饱和吸收体[4]以及在有源区引入杂质以降低载流子的寿命,可以达到这种性能。然而,需要精确控制生长过程以获得令人满意的光学性能。即使已经开发出简化的技术,例如基于碳纳米管或拓扑绝缘体的碳纳米管无法通过可重现的过程大规模实施,因此无法满足当前有效批量生产SESAM的需求。在这里,我们介绍了一种新颖的SESAM体系结构,该结构具有基于金属有机化学气相沉积(MOCVD)的简化制造工艺,与用于增长当前商业可饱和吸收体器件的标准分子束外延技术相比,该技术具有成本效益,并且更适合大规模制造。新一代的SESAMs基于厚的InGaAs层,该层嵌入到谐振的Fabry-Perot微腔中,如图1(a)所示。为了展示我们的SESAM在超快激光器中的巨大潜力,我们成功地使用它在普通色散掺-光纤激光器中实现了稳定的锁模,而无需使用任何其他机制,例如非线性偏振演化,从而将激光腔减小到紧凑且用户友好的配置(请参见图1(a))。如图1(b)所示,获得了持续时间为19.5 ps,宽度为5.4 nm的高-散耗散孤子。然后将脉冲从外部压缩至1.1 ps,我们的系统显示出出色的幅度稳定性,信噪比超过90 dB。激光器以17 MHz的重复频率提供86 mW的平均功率,相当于每脉冲5 nJ的能量。这项工作表明,在超快激光器的开发和应用中,新一代SESAM具有降低的制造成本可以被认为是当前技术的有希望的替代品。

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