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All-optical switching based on soliton self-trapping in dual-core high-contrast optical fibre

机译:基于孤子自捕获双核高造影光纤的全光切换

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摘要

A systematic numerical study of ultrafast nonlinear directional coupler performance based on soliton self-trapping in a novel type of dual-core optical fibre is presented. The considered highly nonlinear fibre structure is composed of a real, intentionally developed soft glass-pair with high refractive index contrast at the level of 0.4 in the near infrared. Nonlinear propagation of picojoule level femtosecond pulses was studied numerically with the aim to identify the best switching performance in input parameter space of 1400-1800 nm in terms of excitation wavelengths, and of 75-150 fs in terms of pulse width, respectively. For every combination of excitation wavelength and pulse width, the switching energies together with the optimal fibre length were determined and their relation to the input and switching parameters is discussed. The highest switching contrast of 46 dB in the time window of the ultrashort soliton was predicted at combination of 1500 nm excitation wavelength and 75 fs pulse width considering 43 mm fibre length. These results represent significant improvement both from point of view of switching contrast and switching energies, which are only at level of 20 pJ, in comparison to the previously published case of air-glass dual-core photonic crystal fibre. Moreover, the simpler fibre design without cladding microstructure together with the all-solid approach holds promise of improved dual-core symmetry and therefore offers high probability of the successful realization of a low power, compact and simple switching device.
机译:提出了一种基于孤子自捕获一种新型双芯光纤的超快非线性定向耦合器性能的系统数值研究。所考虑的高度非线性纤维结构由真实的,故意开发的软玻璃对,其具有高折射率对比,在近红外线的水平下。数值研究微微joule水平小模级脉冲的非线性传播,目的是在激发波长和脉冲宽度方面识别1400-1800nm的输入参数空间中的最佳切换性能,分别为75-150 fs。对于激发波长和脉冲宽度的每个组合,确定与最佳纤维长度一起的开关能量,并讨论与输入和切换参数的关系。考虑到43mm光纤长度的1500nm激发波长和75 fs脉冲宽度,预测了超短孤子时间窗中的46dB的最高切换对比度。与先前公布的空气玻璃双芯光子晶体纤维相比,这些结果从开关对比度和开关能量的角度来表示显着改善,这对于仅在20pj的水平为20pj。此外,在没有覆层微结构的纤维设计简单的光纤设计与全固体方法一起保持了改进的双核对称性的承担,因此提供了高功率,紧凑型和简单的开关装置的成功实现的高概率。

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