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A mirrorless photonic free-electron laser oscillator

机译:无镜光子自由电子激光振荡器

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摘要

Photonic crystals have been used to provide fundamental control over the interaction between light and matter, including stimulated emission. For example, in Bloch-mode lasers, the photonic crystal provides field enhancement through reduced group velocity and offers larger mode volumes through distributed feedback. In a photonic free-electron laser (pFEL), where electrons stream through a photonic crystal (see Fig.1), gain and coherent output is provided by free electrons through the emission of coherent Cherenkov radiation. The property of this radiation mechanism is that the optical gain can be scaled over a large range of the electromagnetic spectrum via selecting an appropriate spatial period of the photonic crystal, and be tuned continuously via the electron velocity. Furthermore, due to the periodic dispersion of the Bloch modes, the pFEL can be operated in the so-called backward wave regime where the group velocity is directed opposite to the phase velocity. In this regime, light generated downstream in the photonic crystal travels upstream, where it bunches the electron beam. The increased bunching subsequently increases the downstream emission. Consequently, the backward wave interaction provides a feedback mechanism and creates an oscillator without the need for external mirrors. This mirrorless oscillator can provide continuously tunable, narrow bandwidth light, for use in, e.g., spectroscopic applications.
机译:光子晶体已被用来提供对光与物质之间相互作用(包括受激发射)的基本控制。例如,在Bloch模式激光器中,光子晶体通过降低群速度来提供场增强,并通过分布式反馈来提供更大的模式量。在光子自由电子激光器(pFEL)中,电子流过光子晶体(见图1),自由电子通过发射相干的契伦科夫辐射来提供增益和相干输出。这种辐射机制的特性是,通过选择合适的光子晶体空间周期,可以在很大的电磁频谱范围内缩放光学增益,并通过电子速度对其进行连续调谐。此外,由于Bloch模的周期性分散,pFEL可以在所谓的反向波模式下运行,在该模式下,群速度与相速度相反。在这种情况下,光子晶体下游产生的光向上游传播,使电子束成束。增加的聚束随后增加了下游排放。因此,后向波相互作用提供了一种反馈机制,并创建了一个振荡器,而无需外部反射镜。这种无镜振荡器可以提供连续可调的,窄带宽的光,用于例如光谱应用中。

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