Noise study of all-normal dispersion supercontinuum sources for potential application in optical coherence tomography

I. B. Gonzalo, R. D. Engelsholm, O. Bang
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引用次数: 4

Abstract

Commercially available silica-fiber-based and ultra-broadband supercontinuum (SC) sources are typically generated by pumping close to the zero-dispersion wavelength (ZDW) of a photonic crystal fiber (PCF), using high-power picosecond or nanosecond laser pulses. Despite the extremely broad bandwidths, such sources are characterized by large intensity fluctuations, limiting their performance for applications in imaging such as optical coherence tomography (OCT). An approach to eliminate the influence of noise sensitive effects is to use a so-called all-normal dispersion (ANDi) fiber, in which the dispersion is normal for all the wavelengths of interest. Pumping these types of fibers with short enough femtosecond pulses allows to suppress stimulated Raman scattering (SRS), which is known to be as noisy process as modulation instability (MI), and coherent SC is generated through self-phase modulation (SPM) and optical wave breaking (OWB). In this study, we show the importance of the pump laser and fiber parameters in the design of low-noise ANDi based SC sources, for application in OCT. We numerically investigate the pulse-to-pulse fluctuations of the SC, calculating the relative intensity noise (RIN) as a function of the pump pulse duration and fiber length. Furthermore, we experimentally demonstrate the role of the fiber length on the RIN of the ANDi SC, validating the results calculated numerically. In the end, we compare the RIN of a commercial SC source based on MI and the ANDi SC source developed here, which shows better noise performance when it is carefully designed.
在光学相干层析成像中潜在应用的全正规色散超连续源的噪声研究
商用硅纤维和超宽带超连续介质(SC)源通常是通过使用高功率皮秒或纳秒激光脉冲泵浦光子晶体光纤(PCF)的零色散波长(ZDW)附近产生的。尽管带宽非常宽,但这种光源的特点是强度波动大,限制了它们在光学相干断层扫描(OCT)等成像应用中的性能。消除噪声敏感效应影响的一种方法是使用所谓的全正常色散(ANDi)光纤,其中色散对所有感兴趣的波长都是正常的。用足够短的飞秒脉冲泵送这些类型的光纤,可以抑制受激拉曼散射(SRS),这是一个众所周知的与调制不稳定性(MI)一样的噪声过程,并且通过自相位调制(SPM)和光波破缺(OWB)产生相干SC。在这项研究中,我们展示了泵浦激光器和光纤参数在设计低噪声基于ANDi的SC源中的重要性,用于oct。我们数值研究了SC的脉冲对脉冲波动,计算了相对强度噪声(RIN)作为泵浦脉冲持续时间和光纤长度的函数。此外,我们通过实验证明了光纤长度对ANDi SC的RIN的作用,验证了数值计算的结果。最后,我们比较了基于MI的商用SC源和本文开发的ANDi SC源的RIN,后者在精心设计时表现出更好的噪声性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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