首页> 外文期刊>Journal of Electron Spectroscopy and Related Phenomena >Electron trajectory simulations of time-of-flight spectrometers for core level high-energy photoelectron spectroscopy at pulsed X-ray sources
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Electron trajectory simulations of time-of-flight spectrometers for core level high-energy photoelectron spectroscopy at pulsed X-ray sources

机译:脉冲X射线源的核心级高能光电子能谱仪飞行时间谱仪的电子轨迹模拟

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The advent of Free Electron Lasers (FELs), able to provide short (2-100 fs) and intense (10(33) photons/s/mm(2)/mrad(2)/0.1%bandwidth) pulses of light also in the hard X-ray regime (h omega> 2000 eV), opens new possibilities to study the ultrafast dynamics of processes, exploiting the capability of Hard X-ray Photoelectron Spectroscopy (HAXPES) to measure core-level spectra of elements with bulk sensitivity. In order to detect the intense bursts of high kinetic energy electrons generated by the X-ray pulses with an energy resolution comparable to the existing category of electron analyzers, a new class of spectrometers must be designed. We present a characterization of two different TOF spectrometers, namely one based on a retarding cylindrical lens and another one based on the spherical reflector geometry. SIMION (R) software has been used in order to evaluate electron trajectories of high kinetic energy electrons (5000-10,000 eV) and extract transmission properties, angular acceptance and energy resolution. It resulted that while the linear system is able to accept a larger solid angle (similar to 50 msr), the spherical mirror offers a better resolving power (around 71,000). Both analyzers are capable of a transmission above 90% within range of kinetic energies wide enough to measure the full line-shape of a core photoionization peak. Furthermore, we proved that both instruments are able to discriminate between two consecutive electron bunches having a temporal separation inferior than 220 ns, which is the distance between two consecutive photon pulses at the European X-ray Free Electron Laser (EXFEL), which is currently under construction in Hamburg. (C) 2015 Elsevier B.V. All rights reserved.
机译:自由电子激光器(FEL)的出现也能够提供短(2-100 fs)和强(10(33)光子/s/mm(2)/mrad(2)/0.1%带宽)的光脉冲。硬X射线状态(ω> 2000 eV)为利用超硬X射线光电子能谱(HAXPES)来测量具有本体灵敏度的元素的核心能级光谱的能力提供了研究过程超快动力学的新可能性。为了检测由X射线脉冲产生的高动能电子的强烈爆发,其能量分辨率与现有的电子分析仪类别相当,必须设计一种新型的光谱仪。我们介绍了两种不同的TOF光谱仪的特性,一种基于延迟圆柱透镜,另一种基于球面反射镜几何形状。为了评估高动能电子(5000-10,000 eV)的电子轨迹并提取传输特性,角接收和能量分辨率,使用了SIMION(R)软件。结果是,尽管线性系统能够接受更大的立体角(类似于50 msr),但球面镜提供了更好的分辨能力(大约71,000)。两种分析仪均能够在动能范围内传输90%以上的信号,该动能范围足以测量核心光电离峰的全线形。此外,我们证明了这两种仪器都能区分时间间隔小于220 ns的两个连续电子束,该时间间隔小于220 ns,这是欧洲X射线自由电子激光(EXFEL)上两个连续光子脉冲之间的距离正在汉堡建设中。 (C)2015 Elsevier B.V.保留所有权利。

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