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Double-Wall Carbon Nanotube Hybrid Mode-Locker in Tm-doped Fibre Laser: A Novel Mechanism for Robust Bound-State Solitons Generation

机译:TM掺杂光纤激光器中的双壁碳纳米管混合模液锁定器:一种用于稳健束缚级孤子的新机制

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The complex nonlinear dynamics of mode-locked fibre lasers, including a broad variety of dissipative structures and self-organization effects, have drawn significant research interest. Around the 2?μm band, conventional saturable absorbers (SAs) possess small modulation depth and slow relaxation time and, therefore, are incapable of ensuring complex inter-pulse dynamics and bound-state soliton generation. We present observation of multi-soliton complex generation in mode-locked thulium (Tm)-doped fibre laser, using double-wall carbon nanotubes (DWNT-SA) and nonlinear polarisation evolution (NPE). The rigid structure of DWNTs ensures high modulation depth (64%), fast relaxation (1.25?ps) and high thermal damage threshold. This enables formation of 560-fs soliton pulses; two-soliton bound-state with 560?fs pulse duration and 1.37?ps separation; and singlet+doublet soliton structures with 1.8?ps duration and 6?ps separation. Numerical simulations based on the vectorial nonlinear Schr¨odinger equation demonstrate a transition from single-pulse to two-soliton bound-states generation. The results imply that DWNTs are an excellent SA for the formation of steady single- and multi-soliton structures around 2?μm region, which could not be supported by single-wall carbon nanotubes (SWNTs). The combination of the potential bandwidth resource around 2?μm with the soliton molecule concept for encoding two bits of data per clock period opens exciting opportunities for data-carrying capacity enhancement.
机译:模式锁定光纤激光器的复杂非线性动力学,包括广泛种类的耗散结构和自我组织效应,具有显着的研究兴趣。在2?μm频带周围,传统的可饱和吸收剂(SAS)具有小的调制深度和慢速弛豫时间,因此不能确保复杂的脉冲间动态和绑定状态孤子生成。我们使用双壁碳纳米管(DWNT-SA)和非线性偏振进化(NPE)观察模式锁定的脊髓(TM) - 掺杂光纤激光器中的多孤子复合物的观察。 DWNT的刚性结构可确保高调制深度(64%),快速松弛(1.25≤PS)和高热损伤阈值。这使得能够形成560-FS孤子脉冲;两个孤子绑定状态,560?FS脉冲持续时间和1.37?PS分离;和单次+双峰孤子结构,持续时间为1.8?ps持续时间和6℃分离。基于矢量非线性SCHR¨DINGER方程的数值模拟证明了从单脉冲到两个孤子绑定状态的转变。结果意味着DWNT是用于形成稳定的单个和多孤子结构的优异SA,其约为2Ωμm区域,其不能由单壁碳纳米管(SWNT)支撑。潜在带宽资源的组合左右2?μm与孤子分子概念用于编码每个时钟周期的两位数据的概念开启了用于数据承载能力增强的令人兴奋的机会。

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