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POSSIBLE APPLICATION OF X-RAY OPTICAL ELEMENTS FOR REDUCING THE SPECTRAL BANDWIDTH OF AN X-RAY SASE FEL

机译:X射线光学元件在减小X射线Sase Fel谱宽方面的可能应用

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A new design for a single pass X-ray Self-Amplified Spontaneous Emission (SASE) FEL is proposed, The scheme consists of two undulators and an X-ray monochromator located between them, The first stage of the FEL amplifier operates in the SASE linear regime, After the exit of the first undulator the electron bunch is guided through a non-isochronous bypass and the X-ray beam enters the monochromator, The main function of the bypass is to suppress the modulation of the electron beam induced in the first undulator. This is possible because of the finite value of the natural energy spread in the beam, At the entrance to the second undulator the radiation power from the monochromator dominates significantly over the shot noise and the residual electron bunching. As a result the second stage of the FEL amplifier operates in the steady-state regime when the input signal bandwidth is small with respect to that of the FEL amplifier, Integral losses of the radiation power in the monochromator are relatively small because grazing incidence optics can be used. The proposed scheme is illustrated for the example of the 6 nm option SASE FEL at the TESLA Test Facility under construction at DESY. As shown in this paper the spectral bandwidth of such a two-stage SASE FEL (Delta lambda/lambda similar or equal to 5 X 10(-5)) is close to the limit defined by the finite duration of the radiation pulse. The average brilliance is equal to 7 X 10(24) photons/(s X mrad(2) X mm(2) X 0.1% bandw.) which is by two orders of magnitude higher than the value which could be reached by the conventional SASE FEL, The monochromatization of the radiation is performed at a low level of radiation power (about 500 times less than the saturation level) which allows one to use conventional X-ray optical elements (grazing incidence grating and mirrors) for the monochromator design. (C) 1997 Elsevier Science B.V. [References: 19]
机译:提出了一种单通X射线自放大自发辐射(SASE)FEL的新设计,该方案由两个波荡器和位于它们之间的X射线单色仪组成,第一级FEL放大器以SASE线性模式工作。在第一个波荡器退出后,电子束被引导通过非等时旁路,X射线束进入单色仪。旁路的主要功能是抑制在第一波荡器中感应的电子束的调制。 。这是可能的,因为束中散布的自然能量是有限的。在第二个起伏器的入口处,单色器的辐射功率在散粒噪声和剩余电子束中明显占优势。结果,当输入信号带宽相对于FEL放大器的输入信号带宽较小时,FEL放大器的第二级将在稳态状态下工作,单色器中辐射功率的积分损耗相对较小,因为掠入射光学器件可以使用。在DESY正在建造的TESLA测试设施中,以6 nm选件SASE FEL为例说明了所建议的方案。如本文所示,这种两级SASE FEL的光谱带宽(Δλ/λ相似或等于5 X 10(-5))接近于由辐射脉冲的有限持续时间定义的极限。平均亮度等于7 X 10(24)光子/(s X mrad(2)X mm(2)X 0.1%bandw。),比常规亮度值高两个数量级。 SASE FEL,辐射的单色化是在较低的辐射功率(比饱和度低约500倍)下执行的,这使人们可以将常规X射线光学元件(掠入射光栅和反射镜)用于单色仪设计。 (C)1997 Elsevier Science B.V. [参考:19]

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