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RGB generation by four-wave mixing in small-core holey fibers

机译:在小芯多孔光纤中通过四波混频产生RGB

摘要

We report the generation of white light comprising red, green, and blue spectral bands from a frequency-doubled fiber laser by an efficient four-wave mixing process in submicron-sized cores of microstructured holey fibers. A master-oscillator power amplifier (MOPA) source based on Yb-doped fiber is employed to generate 80 ps pulses at 1060 nm wavelength with 32 MHz repetition rate, which are then frequency-doubled in an LBO crystal to generate up to 2 W average power of green light. The green pump is then carefully launched into secondary cores of the cladding of photonic bandgap fibers. These secondary cores with diameters of about 400 to 800 nm act as highly nonlinear waveguides. At the output, we observe strong red and blue sidebands which, together with the remaining green pump light, form a visible white light source of about 360 mW. The generating process is identified as four-wave mixing where phase matching is achieved by birefringence in the secondary cores which arises from non-symmetric deformation during the fiber fabrication. Numerical models of the fiber structure and of the nonlinear processes confirm our interpretation. Finally, we discuss power scaling and limitations of the white light source due to the damage threshold of silica fibers.
机译:我们报告了通过高效的四波混合过程,在微结构孔纤维的亚微米尺寸纤芯中,从倍频光纤激光器产生了包括红色,绿色和蓝色光谱带的白光。使用基于掺Yb光纤的主振荡器功率放大器(MOPA)源,在1060 nm波长下以32 MHz的重复频率生成80 ps脉冲,然后在LBO晶体中将其倍频以产生平均2 W的功率绿灯的力量。然后将绿色泵小心地发射到光子带隙光纤包层的次级纤芯中。这些直径约为400至800 nm的次级纤芯充当高度非线性的波导。在输出端,我们观察到了强烈的红色和蓝色边带,它们与其余的绿色泵浦光一起形成了约360 mW的可见白光源。产生过程被识别为四波混频,其中相位匹配是通过次级纤芯中的双折射实现的,双折射是由光纤制造过程中的非对称变形引起的。纤维结构和非线性过程的数值模型证实了我们的解释。最后,我们讨论了由于二氧化硅纤维的损伤阈值而导致的白光源功率缩放和限制。

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