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基于单片微谐振器产生光学频率梳

Optical frequency comb generation from a monolithic microresonator.

作者信息

Del'Haye P, Schliesser A, Arcizet O, Wilken T, Holzwarth R, Kippenberg T J

机构信息

Max Planck Institut für Quantenoptik (MPQ), Hans-Kopfermann-Strasse 1, 85748 Garching, Germany.

出版信息

Nature. 2007 Dec 20;450(7173):1214-7. doi: 10.1038/nature06401.

Abstract

Optical frequency combs provide equidistant frequency markers in the infrared, visible and ultraviolet, and can be used to link an unknown optical frequency to a radio or microwave frequency reference. Since their inception, frequency combs have triggered substantial advances in optical frequency metrology and precision measurements and in applications such as broadband laser-based gas sensing and molecular fingerprinting. Early work generated frequency combs by intra-cavity phase modulation; subsequently, frequency combs have been generated using the comb-like mode structure of mode-locked lasers, whose repetition rate and carrier envelope phase can be stabilized. Here we report a substantially different approach to comb generation, in which equally spaced frequency markers are produced by the interaction between a continuous-wave pump laser of a known frequency with the modes of a monolithic ultra-high-Q microresonator via the Kerr nonlinearity. The intrinsically broadband nature of parametric gain makes it possible to generate discrete comb modes over a 500-nm-wide span (approximately 70 THz) around 1,550 nm without relying on any external spectral broadening. Optical-heterodyne-based measurements reveal that cascaded parametric interactions give rise to an optical frequency comb, overcoming passive cavity dispersion. The uniformity of the mode spacing has been verified to within a relative experimental precision of 7.3 x 10(-18). In contrast to femtosecond mode-locked lasers, this work represents a step towards a monolithic optical frequency comb generator, allowing considerable reduction in size, complexity and power consumption. Moreover, the approach can operate at previously unattainable repetition rates, exceeding 100 GHz, which are useful in applications where access to individual comb modes is required, such as optical waveform synthesis, high capacity telecommunications or astrophysical spectrometer calibration.

摘要

光学频率梳在红外、可见光和紫外波段提供等间距的频率标记,可用于将未知光学频率与射频或微波频率参考相连接。自其诞生以来,频率梳已在光学频率计量和精密测量以及诸如基于宽带激光的气体传感和分子指纹识别等应用中引发了重大进展。早期工作通过腔内相位调制产生频率梳;随后,利用锁模激光器的梳状模式结构产生频率梳,其重复率和载波包络相位可以得到稳定。在此,我们报告一种产生频率梳的截然不同的方法,其中等间距的频率标记是通过已知频率的连续波泵浦激光器与单片超高Q微谐振器的模式之间经由克尔非线性相互作用产生的。参量增益固有的宽带特性使得能够在1550 nm附近500 nm宽的跨度(约70 THz)上产生离散的梳状模式,而无需依赖任何外部光谱展宽。基于光外差的测量表明,级联参量相互作用产生了光学频率梳,克服了无源腔色散。模式间距均匀性已在7.3×10⁻¹⁸ 的相对实验精度内得到验证。与飞秒锁模激光器不同,这项工作朝着单片光学频率梳发生器迈出了一步,可大幅减小尺寸、降低复杂性并减少功耗。此外该方法能够以超过100 GHz的先前无法达到的重复率运行这在需要访问单个梳状模式 的应用中很有用,例如光学波形合成、高容量电信或天体物理光谱仪校准。

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