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Enhanced visible supercontinuum generation in seven-core photonic crystal fiber

机译:七核光子晶体纤维中增强的可见超连续板

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The visible supercontinuum (SC) sources has played an important role in biomedical applications. However, the small core size of photonic crystal fiber (PCF) restrict the development of high power SC by its small mode field area. In addition, the zero dispersion wavelength (ZDW) of the PCF with small core diameter is usually below 1 μm, which is far away from the 1.06 μm laser which is the most commonly used pump source. As the ZDW of PCF shifts away from the pump, the intensity of visible light decreases correspondingly. We promote a new technique to get an enhanced visible SC with high output power, which involves enhanced visible SC generation in a seven-core PCF pumped by a high power 1016 nm fiber laser. Muti-core PCFs offer a possibility of scaling up the mode field area to a large extent without remarkable change in dispersion properties, which show great potential in high power SC generation. Using a 1016 nm fiber laser as the pump makes the pump wavelength closer to the ZDW of PCF, which could raise the intensity of visible light. In this paper, we report an enhanced visible SC generation ranging from 400 nm to 2300 nm in a seven-core PCF pumped by a 1016 nm picosecond fiber laser. The visible light (400~800 nm) occupies 31% of the total SC power 24 W and the power of the visible light is about 7.4 W.
机译:可见超大素(SC)源在生物医学应用中发挥了重要作用。然而,光子晶体纤维(PCF)的小芯尺寸限制了其小型模式场区域的高功率Sc的开发。另外,具有小芯直径的PCF的零色散波长(ZdW)通常低于1μm,远离1.06μm激光器,这是最常用的泵浦源。由于PCF的ZDW远离泵,可见光强度相应地降低。我们推广一种新技术来获得具有高输出功率的增强的可见SC,这涉及由高功率1016nm光纤激光器泵送的七核PCF中增强的可见SC。 Muti-Core PCFS提供了在很大程度上将模式场区域缩放到的可能性,而不显着变化的色散性能,这在高功率SC时显示出很大的潜力。使用1016 NM光纤激光器作为泵使泵波长更靠近PCF的ZDW,这可以提高可见光的强度。在本文中,我们在由1016nmPic秒光纤激光器泵送的七核PCF中报告了一个增强的可见SC,范围为400nm至2300nm。可见光(400〜800nm)占总SC功率24W的31%,可见光的功率约为7.4W。

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