Chang Guoqing, Chen Li-Jin, Kärtner Franz X
Department of Electrical Engineering and Computer Science, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.
Opt Express. 2011 Mar 28;19(7):6635-47. doi: 10.1364/OE.19.006635.
Fiber-optic Cherenkov radiation has emerged as a wavelength conversion technique to achieve isolated spectrum in the visible wavelength range. Most published results have reinforced the impression that CR forms a narrowband spectrum with poor efficiency. We both theoretically and experimentally investigate fiber-optic Cherenkov radiation excited by few-cycle pulses. We introduce the coherence length to quantify the Cherenkov-radiation bandwidth and its dependence on propagation distance. Detailed numerical simulations verified by experimental results reveal three unique features that are absent when pumped with often-used, long pulses; that is, continuum generation (may span one octave in connection with the pump spectrum), high conversion efficiency (up to 40%), and broad bandwidth (70 nm experimentally obtained) for the isolated Cherenkov radiation spectrum. These merits allow achieving broadband visible-wavelength spectra from low-energy ultrafast sources which opens up new applications (e.g. precision calibration of astronomical spectrographs).
光纤切伦科夫辐射已成为一种波长转换技术,用于在可见波长范围内实现孤立光谱。大多数已发表的结果强化了这样一种印象,即切伦科夫辐射形成窄带光谱且效率低下。我们通过理论和实验研究了由少周期脉冲激发的光纤切伦科夫辐射。我们引入相干长度来量化切伦科夫辐射带宽及其对传播距离的依赖性。经实验结果验证的详细数值模拟揭示了在使用常用长脉冲泵浦时不存在的三个独特特征;即,连续谱产生(与泵浦光谱相关时可能跨越一个倍频程)、高转换效率(高达40%)以及孤立切伦科夫辐射光谱的宽带宽(实验获得70纳米)。这些优点使得能够从低能量超快光源获得宽带可见波长光谱,这开辟了新的应用(例如天文光谱仪的精确校准)。