论文标题

相敏感核目标光谱(幻象)

Phase-sensitive nuclear target spectroscopy (PHANTASY)

论文作者

Herkommer, Benedikt, Evers, Jörg

论文摘要

Mössbauer核在硬X射线能量上具有异常狭窄的谐振,这使它们在凝结 - 凝结系统中的结构和动力学方面提供了理想的探针,并且是X射线量子光学和基本测试的有前途的平台。然而,由于X射线脉冲的宽光谱带宽,并且由于X射线光学器件和检测器提供的有限的频谱分辨率,因此在现代X射线源(例如同步基因或X射线无电子激光器)上进行直接光谱是具有挑战性的。为了克服这些挑战,在这里,我们提出了一种基于频谱狭窄的参考吸收器的光谱技术,该参考吸收器沿X射线光的传播方向迅速振荡。该运动引起了对吸收器响应的边带,我们在未知靶标的光谱中扫描以获取光谱信息。振荡进一步引入了X射线激发时检测到的光对运动阶段的依赖性,作为额外的可控自由度。我们在整个数据分析过程中展示了相对于此阶段的傅立叶分析如何使一个人在实际实验后选择性提取记录的强度的一部分。这使人们可以通过消除不需要的信号贡献来改善光谱恢复。我们的方法能够从整个测得的强度中获得光谱信息,而不仅是从激发后的后期强度中获得的,因此可以使用信号光子的明显更高部分。此外,它不仅使一个人能够测量光谱响应的幅度,而且还可以测量其相。

Mössbauer nuclei feature exceptionally narrow resonances at hard x-ray energies, which render them ideal probes for structure and dynamics in condensed-matter systems, and a promising platform for x-ray quantum optics and fundamental tests. However, a direct spectroscopy at modern x-ray sources such as synchrotrons or x-ray free electron lasers is challenging, because of the broad spectral bandwidth of the delivered x-ray pulses, and because of a limited spectral resolution offered by x-ray optics and detectors. To overcome these challenges, here, we propose a spectroscopy technique based on a spectrally narrow reference absorber that is rapidly oscillating along the propagation direction of the x-ray light. The motion induces sidebands to the response of the absorber, which we scan across the spectrum of the unknown target to gain spectral information. The oscillation further introduces a dependence of the detected light on the motional phase at the time of x-ray excitation as an additional controllable degree of freedom. We show how a Fourier analysis with respect to this phase enables one to selectively extract parts of the recorded intensity after the actual experiment, throughout the data analysis. This allows one to improve the spectral recovery by removing unwanted signal contributions. Our method is capable of gaining spectral information from the entire measured intensity, and not only from the intensity at late times after the excitation, such that a significantly higher part of the signal photons can be used. Furthermore, it not only enables one to measure the amplitude of the spectral response, but also its phase.

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