X-ray harmonic comb from relativistic electron spikes
Alexander S. Pirozhkov, Masaki Kando, Timur Zh. Esirkepov, Eugene N., Ragozin, Anatoly Ya. Faenov, Tatiana A. Pikuz, Tetsuya Kawachi, Akito, Sagisaka, Michiaki Mori, Keigo Kawase, James K. Koga, Takashi Kameshima, Yuji, Fukuda, Liming Chen, Izuru Daito, Koichi Ogura

TL;DR
This paper demonstrates a compact, high-order harmonic X-ray source generated by a relativistic femtosecond laser in a gas target, producing coherent soft X-rays suitable for advanced imaging and scientific applications.
Contribution
It introduces a new method for generating coherent X-ray harmonics using relativistic laser-plasma interactions, with scalable harmonic orders and practical laboratory implementation.
Findings
Coherent soft X-rays emitted with a comb-like spectrum reaching the water window.
Harmonic order scales with the cube of the laser amplitude due to relativistic self-focusing.
The setup is accessible and debris-free, suitable for high-repetition-rate applications.
Abstract
X-ray devices are far superior to optical ones for providing nanometre spatial and attosecond temporal resolutions. Such resolution is indispensable in biology, medicine, physics, material sciences, and their applications. A bright ultrafast coherent X-ray source is highly desirable, for example, for the diffractive imaging of individual large molecules, viruses, or cells. Here we demonstrate experimentally a new compact X-ray source involving high-order harmonics produced by a relativistic-irradiance femtosecond laser in a gas target. In our first implementation using a 9 Terawatt laser, coherent soft X-rays are emitted with a comb-like spectrum reaching the 'water window' range. The generation mechanism is robust being based on phenomena inherent in relativistic laser plasmas: self-focusing, nonlinear wave generation accompanied by electron density singularities, and collective…
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