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The physics behind free electron lasers (FELs) based on magnetostatic and optical undulators

机译:基于静磁和光学波荡器的自由电子激光器(FEL)背后的物理学

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摘要

By explicitly writing the equations of motion for highly relativistic electrons in an electromagnetic field we show the equivalence between the magnetostatic and optical (laser) undulator-based free electron lasers (FELs). In order to gain insight into the physics behind both FEL mechanisms we use a simplified approach developed in Ref. 1 to describe the optical amplification process. By using elementary physics we explain the phenomenon of microbunching, caused by the interaction of electrons with the emitted wave, which leads to coherent emission of radiation and is the essential ingredient in the lasing effect of a FEL. With our simplified model we derive the two main FEL parameters - the gain and saturation lengths. Finally, we discuss the potential advantages of using an optical instead of a magnetostatic undulator in a FEL. With our approach the physics behind FELs becomes evident and accessible to researchers outside the specialized field.
机译:通过明确地写出电磁场中高相对论性电子的运动方程,我们显示出静磁和基于光学(激光)波荡器的自由电子激光器(FEL)之间的等效性。为了深入了解这两种FEL机制背后的物理原理,我们使用了参考文献中开发的简化方法。参照图1来描述光放大过程。通过使用基本物理学,我们解释了由于电子与发射波的相互作用而引起的微束聚现象,该现象导致辐射的相干发射,并且是FEL激光作用中的重要成分。通过我们的简化模型,我们得出了两个主要的FEL参数-增益和饱和长度。最后,我们讨论了在FEL中使用光学而不是静磁波荡器的潜在优势。通过我们的方法,FEL背后的物理原理变得显而易见,并且对于专业领域以外的研究人员而言也是可以访问的。

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