Almagro-Ruiz Azahara, Torres-Peiró Salvador, Muñoz-Marco Héctor, Cunquero Marina, Castro-Olvera Gustavo, Dauliat Romain, Jamier Raphael, Shulika Oleksiy V, Romero Rosa, Guerreiro Paulo T, Miranda Miguel, Crespo Helder, Roy Philippe, Loza-Álvarez Pablo, Pérez-Millán Pere
Opt Express. 2022 Aug 1;30(16):29044-29062. doi: 10.1364/OE.454726.
Temporally coherent supercontinuum sources constitute an attractive alternative to bulk crystal-based sources of few-cycle light pulses. We present a monolithic fiber-optic configuration for generating transform-limited temporally coherent supercontinuum pulses with central wavelength at 1.06 µm and duration as short as 13.0 fs (3.7 optical cycles). The supercontinuum is generated by the action of self-phase modulation and optical wave breaking when pumping an all-normal dispersion photonic crystal fiber with pulses of hundreds of fs duration produced by all-fiber chirped pulsed amplification. Avoidance of free-space propagation between stages confers unequalled robustness, efficiency and cost-effectiveness to this novel configuration. Collectively, the features of all-fiber few-cycle pulsed sources make them powerful tools for applications benefitting from the ultrabroadband spectra and ultrashort pulse durations. Here we exploit these features and the deep penetration of light in biological tissues at the spectral region of 1 µm, to demonstrate their successful performance in ultrabroadband multispectral and multimodal nonlinear microscopy.
时间相干超连续谱源是基于块状晶体的少周期光脉冲源的一种有吸引力的替代方案。我们展示了一种单片光纤配置,用于产生中心波长为1.06 µm、持续时间短至13.0 fs(3.7个光学周期)的变换极限时间相干超连续谱脉冲。当用全光纤啁啾脉冲放大产生的数百飞秒持续时间的脉冲泵浦全正色散光子晶体光纤时,通过自相位调制和光学波破碎作用产生超连续谱。避免级间自由空间传播赋予了这种新颖配置无与伦比的稳健性、效率和成本效益。总的来说,全光纤少周期脉冲源的特性使其成为受益于超宽带光谱和超短脉冲持续时间的应用的强大工具。在这里,我们利用这些特性以及光在1 µm光谱区域对生物组织的深度穿透,来证明它们在超宽带多光谱和多模态非线性显微镜中的成功性能。