Lin Guoping, Chembo Yanne K
Opt Express. 2015 Jan 26;23(2):1594-604. doi: 10.1364/OE.23.001594.
Optical whispering gallery mode (WGM) resonators have been very attracting platforms for versatile Kerr frequency comb generations. We report a systematic study on the material dispersion of various optical materials that are capable of supporting quality factors above 10. Using an analytical approximation of WGM resonant frequencies in disk resonators, we investigate the effect of the geometry and transverse mode order on the total group-velocity dispersion (GVD). We demonstrate that the major radii and the radial mode indices play an important role in tailoring the GVD of WGM resonators. In particular, our study shows that in WGM disk-resonators, the polar families of modes have very similar GVD, while the radial families of modes feature dispersion values that can differ by up to several orders of magnitude. The effect of these giant dispersion shifts are experimentally evidenced in Kerr comb generation with magnesium fluoride. From a more general perspective, this critical feature enables to push the zero-dispersion wavelength of fluorite crystals towards the mid-infrared (mid-IR) range, thereby allowing for efficient Kerr comb generation in that spectral range. We show that barium fluoride is the most interesting crystal in this regard, due to its zero dispersion wavelength (ZDW) at 1.93 μm and an optimal dispersion profile in the mid-IR regime. We expect our results to facilitate the design of different platforms for Kerr frequency comb generations in both telecommunication and mid-IR spectral ranges.
光学回音壁模式(WGM)谐振器一直是产生多功能克尔频率梳的极具吸引力的平台。我们报告了对各种能够支持品质因数高于10的光学材料的材料色散的系统研究。利用盘形谐振器中WGM谐振频率的解析近似,我们研究了几何形状和横向模式阶数对总群速度色散(GVD)的影响。我们证明,主半径和径向模式指数在调整WGM谐振器的GVD方面起着重要作用。特别是,我们的研究表明,在WGM盘形谐振器中,模式的极向族具有非常相似的GVD,而模式的径向族的色散值可能相差几个数量级。这些巨大色散偏移的影响在使用氟化镁产生克尔梳的实验中得到了证实。从更一般的角度来看,这一关键特性能够将萤石晶体的零色散波长推向中红外(mid-IR)范围,从而在该光谱范围内实现高效的克尔频率梳产生。我们表明,氟化钡在这方面是最有趣的晶体,因为它在1.93μm处具有零色散波长(ZDW),并且在中红外区域具有最佳的色散分布。我们期望我们的结果能够促进在电信和中红外光谱范围内用于克尔频率梳产生的不同平台的设计。