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arXiv · 2412.15775

Coherent Interactions of Free Electrons and Matter: Toward Tunable Compact X-ray Sources

Abstract

Compact laboratory-scale X-ray sources still rely on the same fundamental principles as in the first X-ray tubes developed more than a century ago. In recent years, significant research and development have focused on large-scale X-ray sources such as synchrotrons and free-electron lasers, leading to the generation of high-brightness coherent X-rays. However, the large size and high costs of such sources prevent their widespread use. The quest for a compact and coherent Xray source has long been a critical objective in modern physics, gaining further importance in recent years for industrial applications and fundamental scientific research. Here, we review the physical mechanisms governing compact coherent X-ray generation. Of current interest are coherent periodic interactions of free electrons in crystalline materials, creating hard X-rays via a mechanism known as parametric X-ray radiation (PXR). Over the past decade, X-ray sources leveraging this mechanism have demonstrated state-of-the-art tunability, directionality, and broad spatial coherence, enabling X-ray phase-contrast imaging on a compact scale. The coming years are expected to show substantial miniaturization of compact X-ray sources, facilitated by progress in electron beam technologies. This review compares the most promising mechanisms used for hard-X-ray generation, contrasting parametric X-ray radiation with inverse Compton scattering and characteristic radiation from a liquid-jet anode. We cover the most recent advancements, including the development of new materials, innovative geometrical designs, and specialized optimization techniques, aiming toward X-ray flux levels suitable for medical imaging and X-ray spectroscopy in compact scales.

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BibTeXRIS

Amnon Balanov, Alexey Gorlach, Vladimir Baryshevsky, Ilya Feranchuk, Hideo Nitta, Yasushi Hayakawa, Alexander Shchagin, Yuichi Takabayashi, Yaron Danon, Liang Jie Wong, Ido Kaminer. 2024-12-20. Coherent Interactions of Free Electrons and Matter: Toward Tunable Compact X-ray Sources. https://doi.org/10.1364/aop.559742

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